research communications
Crystal structures of three lead(II) acetate-bridged diaminobenzene coordination polymers
aDepartment of Chemistry, SUNY-College at Geneseo, Geneseo, NY 14454, USA
*Correspondence e-mail: geiger@geneseo.edu
Poly[tris(acetato-κ2O,O′)(μ2-acetato-κ3O,O′:O)tetrakis(μ3-acetato-κ4O,O′:O:O′)bis(benzene-1,2-diamine-κN)tetralead(II)], [Pb4(CH3COO)8(C6H8N2)2]n, (I), poly[(acetato-κ2O,O′)(μ3-acetato-κ4O,O′:O:O′)(4-chlorobenzene-1,2-diamine-κN)lead(II)], [Pb(CH3COO)2(C6H7ClN2)]n, (II), and poly[(κ2O,O′)(μ3-acetato-κ4O,O′:O:O′)(3,4-diaminobenzonitrile-κN)lead(II)], [Pb(CH3COO)2(C7H7N3)]n, (III), have polymeric structures in which monomeric units are joined by bridging acetate ligands. All of the PbII ions exhibit hemidirected coordination. The repeating unit in (I) is composed of four PbII ions having O6, O6N, O7 and O6N coordination spheres, respectively, where N represents a monodentate benzene-1,2-diamine ligand and O acetate O atoms. Chains along [010] are joined by bridging acetate ligands to form planes parallel to (10-1). (II) and (III) are isotypic and have one PbII ion in the that has an O6N coordination sphere. Pb2O2 units result from a symmetry-imposed inversion center. Polymeric chains parallel to [100] exhibit hydrogen bonding between the amine and acetate ligands. In (III), additional hydrogen bonds between cyano groups and non-coordinating join the chains by forming R22(14) rings.
1. Chemical context
Metal–organic frameworks (MOFs) are of inherent interest in areas such as gas storage, catalysis, chemical sensors and molecular separation (Dey et al., 2014; Kreno et al., 2012; Farha & Hupp, 2010). Recently, we reported the synthesis and structural characterization of two zinc MOFs possessing bridging acetate ligands and monodentate chloro- or cyano-substituted o-phenylenediamine ligands (Geiger & Parsons, 2014). These complexes possess a ladder–chain structure with an ethanol molecule that occupies a void with a volume of approximately 224 Å3. The results presented here expand the structural study to PbII analogues.
PbII compounds often exhibit a distorted coordination sphere or open coordination site that has been attributed to stereoactive `lone-pair' electrons (Morsali, 2004; Wang & Liebau, 2007; Park & Barbier, 2001). Indeed, hemidirected geometry is favored over halodirected geometry for PbII when hard ligands are present, which corresponds to a greater ionic character in the metal–ligand bonding (Shimoni-Livny et al., 1998), or when one or more of the ligands is anionic (Esteban-Gómez et al., 2006). However, hemidirected lead(II) complexes in a soft sulfur-rich environment are also known (Imran et al., 2014). The results of a reduced variational space (RVS) analysis suggest that more sterically crowded, hemidirected structures are stabilized by polarization of the lead(II) ion induced by the ligand arrangement (Devereux et al., 2011). The possibility of a distorted coordination sphere enhancing the volume of void space between chains found in coordination polymers provided the impetus for the synthesis and structural characterization of the compounds reported herein.
2. Structural commentary
Fig. 1 shows the three acetate coordination modes displayed by (I), (II), and (III). The three modes will be referred to hereafter as types (a), (b) and (c). As seen in Fig. 2, the of (I) has four symmetry-independent Pb atoms. The Pb atoms are linked by bridging acetate ligands of type (b) to form a ladder-chain parallel to [010]. Each is also coordinated to a bidentate acetate ligand of type (a) and Pb2 and Pb4 have an amine nitrogen in their coordination spheres. Finally, atoms Pb3 and Pb4 are linked by an acetato ligand of type (c). The two benzene-1,2-diamine ligands are approximately coplanar. The angle formed by the benzene mean planes is 6.1 (4)°, with N1, N2, N3 and N4 being 0.051 (16), 0.013 (19), 0.074 (16), and 0.034 (16) Å from their respective planes.
The possesses pseudo-translational symmetry as a result of the similarity in the coordination geometries exhibited by Pb1 and Pb3 and by Pb2 and Pb4. Pb1⋯Pb3 = 7.4548 (10) Å and Pb2⋯Pb4 = 7.5372 (10) Å, approximately half of the Pb1⋯Pb4i = 14.989 (2) Å distance (see Table 1 for symmetry codes). Fig. 3 shows a representation of (I) in which the two pseudo-translationally related halves of the are color coded. Primary differences in the two halves involve the orientation of the two non-coordinating amine groups, one less acetate type (c) on Pb1 than on Pb3, and a type (c) acetate ligand on Pb2 replaced by a type (a) acetate ligand on Pb4.
of (I)(II) and (III) are isotypic if the nitrile function in (III) is considered as a large one-atomic group and replaces the Cl atom in (II). Fig. 4 shows the atom-labeling scheme for (II) and Fig. 5 shows the atom-labeling scheme for (III). Each Pb atom has two bidentate acetate ligands, one of type (a) and one of type (b). The type (b) ligands result in chains parallel to [100], with Pb2O2 cores related by inversion centers. The substituted benzene-1,2-diamine ligands are essentially planar. For (II), N1 and N2 are below the plane by 0.056 (14) and 0.066 (18) Å, respectively, and Cl1 is 0.020 (14) Å above the plane. In (III), N1 and N2 are 0.073 (17) and 0.05 (2) Å out of the plane. The C7—N3—C4 angle is 177.7 (16)° and N3 is 0.12 (2) Å out of the plane.
The coordination spheres are O6, O6N, O7, and O6N for Pb1, Pb2, Pb3, and Pb4, respectively, for (I), and O6N for (II) and (III). Representations of the coordination spheres are shown in Fig. 6 and pertinent bond distances are found in Tables 1, 2 and 3. The coordination is clearly hemidirected for each Pb and the Pb—O bond lengths are asymmetrical, as is often found for hemidirected compounds (Shimoni-Livny et al., 1998). The average Pb—O bond lengths are 2.60 (13), 2.59 (11), and 2.58 (12) Å for (I), (II) and (III), respectively, or 2.59 (12) Å overall, and range from 2.380 (6) to 2.901 (6) Å. The average Pb—N bond length for the three compounds is 2.84 (5) Å. In all cases, the Pb—O(N) bond lengths are longer for those ligand atoms adjacent to the open coordination site. This is consistent with structural results for other hemidirected coordination modes involving O- and N-donor atoms (cf. Shimoni-Livny et al., 1998; Morsali et al., 2005; Esteban-Gómez et al., 2006; Morsali, 2004).
|
3. Supramolecular features
The one-dimensional propagates via inversion centers and is extended into two dimensions via an acetate ligand of type (c) that bridges Pb2 and Pb3iii, as shown in Fig. 7, where the symmetry designators are defined. The result is an extended structure composed of planes parallel to (10). N—H⋯O and N—H⋯N hydrogen bonding is observed along the chains parallel to [010] (see Table 4).
chain of (I)
|
In compounds (II) and (III), chains parallel to [100] are observed. An extensive N—H⋯O hydrogen-bonding network is found along the chains (see Tables 5 and 6). For (III), the nitrile group affords the opportunity for additional hydrogen bonding. As seen in Fig. 8, this results in R22(14) rings involving N—H⋯N≡C hydrogen bonds between adjacent chains.
|
|
Based on calculations performed with PLATON (Spek, 2009), no solvent-accessible voids are found in (I), (II), or (III).
4. Database survey
Numerous examples of polymeric lead(II) compounds with bridging carboxylate ligands possessing a range of coordination modes have been reported (for examples, see Lyczko & Bak, 2008; Dai et al., 2009; Mohammadnezhad et al., 2010; Yilmaz et al., 2003; Foreman et al., 2001). A zinc metal organic framework with bridging acetate ligands and a monodentate 4-chlorobenzene-1,2-diamine ligand has been reported (Geiger & Parsons, 2014).
5. Synthesis and crystallization
5.1. Preparation of (I)
Benzene-1,2-diamine (0.109 g, 0.93 mmol) was stirred into a solution of lead(II) acetate trihydrate (0.175 g, 0.46 mmol) in ethanol (10 ml). The solution was heated to a gentle reflux for 2 h and then cooled to room temperature. The solvent was reduced in volume by slow evaporation. After 5 d, crystals suitable for X-ray analysis had formed. Further solvent reduction resulted in precipitation of excess diamine, so the overall yield was not determined. Selected IR bands (diamond anvil, cm−1): 3353 (br), 1505 (s), 1932 (s), 1284 (s) 1045 (w), 1018 (w), 939 (w).
5.2. Preparation of (II)
4-Chlorobenzene-1,2-diamine (0.106 g, 0.75 mmol) was dissolved in boiling ethanol (10 ml) and lead(II) acetate trihydrate (0.134 g, 0.35 mmol) was added with stirring. The resulting solution was refluxed for 4 h, removed from the heat and the solvent was allowed to slowly evaporate. The residue obtained was dissolved in hot methanol and passed through a 45 µm pore filter. Crystals suitable for X-ray analysis were obtained after slow evaporation of the solvent. Further solvent reduction resulted in precipitation of excess diamine and so the overall yield was not determined. Selected IR bands (diamond anvil, cm−1): 3334 (br), 1537 (s), 1393 (s), 1337 (s), 1018 (s).
5.3. Preparation of (III)
To a solution of lead(II) acetate trihydrate (0.149 g, 0.39 mmol) in ethanol (10 ml) was added 3,4-diaminobenzonitrile (0.104 g, 0.75 mmol). The resulting solution was stirred at a gentle reflux for 1 h. The solvent was allowed to slowly evaporate over a period of 3 d, resulting in crystals suitable for X-ray analysis. Further solvent reduction resulted in precipitation of excess diamine and so the overall yield was not determined. Selected IR bands (diamond anvil, cm−1): 3432 (w), 3316 (w), 2213 (s), 1581 (s), 1557 (s), 1394 (s), 1301 (s), 1020 (s).
6. Refinement
Crystal data, data collection and structure . All H atoms were observed in difference Fourier maps. C-bonded H atoms were refined using a riding model, with C—H = 0.98 Å for the methyl groups and 0.95 Å for the aromatic ring. The C—H hydrogen isotropic displacement parameters were fixed using the approximation Uiso(H) = 1.5Ueq(C) for the methyl H atoms and 1.2Ueq(C) for the aromatic H atoms. The atomic coordinates for the amine H atoms were refined using an N—H bond-distance restraint of 0.88 (2) Å and the H-atom isotropic displacement parameters were set using the approximation Uiso(H) = 1.5Ueq(N). Late in the a correction for extinction was applied for each of the structures. For (I), the highest residual electron-density peak is 0.94 Å from Pb2 and the deepest hole is 1.20 Å from Pb3. The highest residual electron-density peak is 0.89 Å and the deepest hole is 0.91 Å from Pb1 in (II). For (III), the highest residual electron-density peak and the deepest hole are 0.92 Å and 0.82 Å, respectively, from Pb1.
details are summarized in Table 7
|
Supporting information
10.1107/S1600536814025380/zl2608sup1.cif
contains datablocks global, I, II, III. DOI:Structure factors: contains datablock I. DOI: 10.1107/S1600536814025380/zl2608Isup2.hkl
Structure factors: contains datablock II. DOI: 10.1107/S1600536814025380/zl2608IIsup3.hkl
Structure factors: contains datablock III. DOI: 10.1107/S1600536814025380/zl2608IIIsup4.hkl
Supporting information file. DOI: 10.1107/S1600536814025380/zl2608Isup5.mol
Supporting information file. DOI: 10.1107/S1600536814025380/zl2608IIsup6.mol
Supporting information file. DOI: 10.1107/S1600536814025380/zl2608IIIsup7.mol
Metal–organic frameworks (MOFs) are of inherent interest in areas such as gas storage, catalysis, chemical sensors and molecular separation (Dey et al., 2014; Kreno et al., 2012; Farha & Hupp, 2010). Recently, we reported the synthesis and structural characterization of two zinc MOFs possessing bridging acetate ligands and monodentate chloro- or cyano-substituted o-phenylenediamine ligands (Geiger & Parsons, 2014). These complexes possess a ladder–chain structure with an ethanol molecule that occupies a void with a volume of approximately 224 Å3. The results presented here expand the structural study to PbII analogues.
PbII compounds often exhibit a distorted coordination sphere or open coordination site that has been attributed to stereoactive `lone-pair' electrons (Morsali, 2004; Wang & Liebau, 2007; Park & Barbier, 2001). Indeed, hemidirected geometry is favored over halodirected geometry for PbII when hard ligands are present, which corresponds to a greater ionic character in the metal–ligand bonding (Shimoni-Livny et al., 1998), or when one or more of the ligands is anionic (Esteban-Gómez et al., 2006). However, hemidirected lead(II) complexes in a soft sulfur-rich environment are also known (Imran et al., 2014). The results of a reduced variational space (RVS) analysis suggest that more sterically crowded, hemidirected structures are stabilized by polarization of the lead(II) ion induced by the ligand arrangement (Devereux et al., 2011). The possibility of a distorted coordination sphere enhancing the volume of void space between chains found in coordination polymers provided the impetus for the synthesis and structural characterization of the compounds reported herein.
Fig. 1 shows the three acetate coordination modes displayed by (I), (II), and (III). The three modes will be referred to hereafter as types (a), (b) and (c). As seen in Fig. 2, the
of (I) has four symmetry-independent Pb atoms. The Pb atoms are linked by bridging acetate ligands of type (b) to form a ladder-chain parallel to [010]. Each is also coordinated to a bidentate acetate ligand of type (a) and Pb2 and Pb4 have an amine nitrogen in their coordination spheres. Finally, atoms Pb3 and Pb4 are linked by an acetato ligand of type (c). The two benzene-1,2-diamine ligands in the are approximately coplanar. The angle formed by the benzene mean planes is 6.1 (4)°, with N1, N2, N3 and N4 being 0.051 (16), 0.013 (19), 0.074 (16), and 0.034 (16) Å from their respective planes.The
of (I) possesses pseudo-translational symmetry as a result of the similarity in the coordination geometries exhibited by Pb1 and Pb3 and by Pb2 and Pb4. Pb1···Pb3 = 7.4548 (10) Å and Pb2···Pb4 = 7.5372 (10) Å, approximately half of the Pb1···Pb4i = 14.989 (2) Å distance (see Table 1 for symmetry codes). Fig. 3 shows a representation of (I) in which the two pseudo-translationally related halves of the are color coded. Primary differences in the two halves involve the orientation of the two uncoordinated amine groups, one less acetate type (c) on Pb1 than on Pb3, and a type (c) acetate ligand on Pb2 replaced by a type (a) acetate ligand on Pb4.(II) and (III) are isomorphous. Fig. 4 shows the atom-labeling scheme for (II) and Fig. 5 shows the atom-labeling scheme for (III). Each Pb atom has two bidentate acetate ligands, one of type (a) and one of type (b). The type (b) ligands result in chains parallel to [100], with Pb2O2 cores related by inversion centers. The substituted benzene-1,2-diamine ligands are essentially planar. For (II), N1 and N2 are below the plane by 0.056 (14) and 0.066 (18) Å, respectively, and Cl1 is 0.020 (14) Å above the plane. In (III), N1 and N2 are 0.073 (17) and 0.05 (2) Å out of the plane. The C7—N3—C4 angle is 177.7 (16)° and N3 is 0.12 (2) Å out of the plane.
The coordination spheres are O6, O6N, O7, and O6N for Pb1, Pb2, Pb3, and Pb4, respectively, for (I), and O6N for (II) and (III). Representations of the coordination spheres are shown in Fig. 3 and pertinent bond distances are found in Tables 1, 2 and 3. The coordination is clearly hemidirected for each Pb and the Pb—O bond distances are asymmetrical, as is often found for hemidirected compounds (Shimoni-Livny et al., 1998). The average Pb—O bond distances are 2.60 (13), 2.59 (11), and 2.58 (12) Å for (I), (II) and (III), respectively, or 2.59 (12) Å overall, and range from 2.380 (6) to 2.901 (6) Å. The Pb—N bond distance averaged over the three compounds is 2.84 (5) Å. In all cases, the Pb—O(N) bond distances are longer for those ligand atoms adjacent to the open coordination site. This is consistent with structural results for other hemidirected coordination modes involving O- and N-donor atoms (cf. Shimoni-Livny et al., 1998; Morsali et al., 2005; Esteban-Gómez et al., 2006; Morsali , 2004).
The one-dimensional 2). N—H···O and N—H···N hydrogen bonding is observed along the chains parallel to [010] (see Table 4).
chain of (I) propagates via inversion centers and is extended into two dimensions via an acetate ligand of type (c) that bridges Pb2 and Pb3iii, as shown in Fig. 6, where the symmetry designators are defined. The result is an extended structure composed of planes parallel to (20In compounds (II) and (III), chains parallel to [100] are observed. An extensive N—H···O hydrogen-bonding network is found along the chains (see Tables 5 and 6). For (III), the nitrile group affords the opportunity for additional hydrogen bonding. As seen in Fig. 7, this results in R22(14) rings involving N—H···N≡C hydrogen bonds between adjacent chains.
Based on calculations performed with PLATON (Spek, 2009), no solvent-accessible voids are found in (I), (II), or (III).
Numerous examples of polymeric lead(II) compounds with bridging carboxylate ligands possessing a range of coordination modes have been reported (for examples, see Lyczko & Bak, 2008; Dai et al., 2009; Mohammadnezhad et al., 2010; Yilmaz et al., 2003; Foreman et al., 2001). A zinc metal organic framework with bridging acetate ligands and a monodentate 4-chlorobenzene-1,2-diamine ligand has been reported (Geiger & Parsons, 2014).
Benzene-1,2-diamine (0.109 g, 0.93 mmol) was stirred into a solution of lead(II) acetate trihydrate (0.175 g, 0.46 mmol) in ethanol (10 ml). The solution was heated to a gentle reflux for 2 h and then cooled to room temperature. The solvent was reduced in volume by slow evaporation. After 5 d, crystals suitable for X-ray analysis had formed. Further solvent reduction resulted in precipitation of excess diamine, so the overall yield was not determined. Selected IR bands (diamond anvil, cm-1): 3353 (br), 1505 (s), 1932 (s), 1284 (s) 1045 (w), 1018 (w), 939 (w).
4-Chlorobenzene-1,2-diamine (0.106 g, 0.75 mmol) was dissolved in boiling ethanol (10 ml) and lead(II) acetate trihydrate (0.134 g, 0.35 mmol) was added with stirring. The resulting solution was refluxed for 4 h, removed from the heat and the solvent was allowed to slowly evaporate. The residue obtained was dissolved in hot methanol and passed through a 45 µm pore filter. Crystals suitable for X-ray analysis were obtained after slow evaporation of the solvent. Further solvent reduction resulted in precipitation of excess diamine and so the overall yield was not determined. Selected IR bands (diamond anvil, cm-1): 3334 (br), 1537 (s), 1393 (s), 1337 (s), 1018 (s).
To a solution of lead(II) acetate trihydrate (0.149 g, 0.39 mmol) in ethanol (10 ml) were added 3,4-diaminobenzonitrile (0.104 g, 0.75 mmol). The resulting solution was stirred at a gentle reflux for 1 h. The solvent was allowed to slowly evaporate over a period of 3 d, resulting in crystals suitable for X-ray analysis. Further solvent reduction resulted in precipitation of excess diamine and so the overall yield was not determined. Selected IR bands (diamond anvil, cm-1): 3432 (w), 3316 (w), 2213 (s), 1581 (s), 1557 (s), 1394 (s), 1301 (s), 1020 (s).
Crystal data, data collection and structure
details are summarized in Table 7. All H atoms were observed in difference Fourier maps. C-bonded H atoms were refined using a riding model, with C—H = 0.98 Å for the methyl groups and 0.95 Å for the aromatic ring. The C—H hydrogen isotropic displacement parameters were fixed using the approximation Uiso(H) = 1.5Ueq(C) for the methyl H atoms and 1.2Ueq(C) for the aromatic H atoms. The atomic coordinates for the amine H atoms were refined using an N—H bond-distance restraint of 0.88 (2) Å and the H-atom isotropic displacement parameters were set using the approximation Uiso(H) = 1.5Ueq(N). Late in the a correction for extinction was applied for each of the structures. For (I), the highest residual electron-density peak is 0.94 Å from Pb2 and the deepest hole is 1.20 Å from Pb3. The highest residual electron-density peak is 0.89 Å and the deepest hole is 0.91 Å from Pb1 in (II). For (III), the highest residual electron-density peak and the deepest hole are 0.92 Å and 0.82 Å, respectively, from Pb1.Metal–organic frameworks (MOFs) are of inherent interest in areas such as gas storage, catalysis, chemical sensors and molecular separation (Dey et al., 2014; Kreno et al., 2012; Farha & Hupp, 2010). Recently, we reported the synthesis and structural characterization of two zinc MOFs possessing bridging acetate ligands and monodentate chloro- or cyano-substituted o-phenylenediamine ligands (Geiger & Parsons, 2014). These complexes possess a ladder–chain structure with an ethanol molecule that occupies a void with a volume of approximately 224 Å3. The results presented here expand the structural study to PbII analogues.
PbII compounds often exhibit a distorted coordination sphere or open coordination site that has been attributed to stereoactive `lone-pair' electrons (Morsali, 2004; Wang & Liebau, 2007; Park & Barbier, 2001). Indeed, hemidirected geometry is favored over halodirected geometry for PbII when hard ligands are present, which corresponds to a greater ionic character in the metal–ligand bonding (Shimoni-Livny et al., 1998), or when one or more of the ligands is anionic (Esteban-Gómez et al., 2006). However, hemidirected lead(II) complexes in a soft sulfur-rich environment are also known (Imran et al., 2014). The results of a reduced variational space (RVS) analysis suggest that more sterically crowded, hemidirected structures are stabilized by polarization of the lead(II) ion induced by the ligand arrangement (Devereux et al., 2011). The possibility of a distorted coordination sphere enhancing the volume of void space between chains found in coordination polymers provided the impetus for the synthesis and structural characterization of the compounds reported herein.
Fig. 1 shows the three acetate coordination modes displayed by (I), (II), and (III). The three modes will be referred to hereafter as types (a), (b) and (c). As seen in Fig. 2, the
of (I) has four symmetry-independent Pb atoms. The Pb atoms are linked by bridging acetate ligands of type (b) to form a ladder-chain parallel to [010]. Each is also coordinated to a bidentate acetate ligand of type (a) and Pb2 and Pb4 have an amine nitrogen in their coordination spheres. Finally, atoms Pb3 and Pb4 are linked by an acetato ligand of type (c). The two benzene-1,2-diamine ligands in the are approximately coplanar. The angle formed by the benzene mean planes is 6.1 (4)°, with N1, N2, N3 and N4 being 0.051 (16), 0.013 (19), 0.074 (16), and 0.034 (16) Å from their respective planes.The
of (I) possesses pseudo-translational symmetry as a result of the similarity in the coordination geometries exhibited by Pb1 and Pb3 and by Pb2 and Pb4. Pb1···Pb3 = 7.4548 (10) Å and Pb2···Pb4 = 7.5372 (10) Å, approximately half of the Pb1···Pb4i = 14.989 (2) Å distance (see Table 1 for symmetry codes). Fig. 3 shows a representation of (I) in which the two pseudo-translationally related halves of the are color coded. Primary differences in the two halves involve the orientation of the two uncoordinated amine groups, one less acetate type (c) on Pb1 than on Pb3, and a type (c) acetate ligand on Pb2 replaced by a type (a) acetate ligand on Pb4.(II) and (III) are isomorphous. Fig. 4 shows the atom-labeling scheme for (II) and Fig. 5 shows the atom-labeling scheme for (III). Each Pb atom has two bidentate acetate ligands, one of type (a) and one of type (b). The type (b) ligands result in chains parallel to [100], with Pb2O2 cores related by inversion centers. The substituted benzene-1,2-diamine ligands are essentially planar. For (II), N1 and N2 are below the plane by 0.056 (14) and 0.066 (18) Å, respectively, and Cl1 is 0.020 (14) Å above the plane. In (III), N1 and N2 are 0.073 (17) and 0.05 (2) Å out of the plane. The C7—N3—C4 angle is 177.7 (16)° and N3 is 0.12 (2) Å out of the plane.
The coordination spheres are O6, O6N, O7, and O6N for Pb1, Pb2, Pb3, and Pb4, respectively, for (I), and O6N for (II) and (III). Representations of the coordination spheres are shown in Fig. 3 and pertinent bond distances are found in Tables 1, 2 and 3. The coordination is clearly hemidirected for each Pb and the Pb—O bond distances are asymmetrical, as is often found for hemidirected compounds (Shimoni-Livny et al., 1998). The average Pb—O bond distances are 2.60 (13), 2.59 (11), and 2.58 (12) Å for (I), (II) and (III), respectively, or 2.59 (12) Å overall, and range from 2.380 (6) to 2.901 (6) Å. The Pb—N bond distance averaged over the three compounds is 2.84 (5) Å. In all cases, the Pb—O(N) bond distances are longer for those ligand atoms adjacent to the open coordination site. This is consistent with structural results for other hemidirected coordination modes involving O- and N-donor atoms (cf. Shimoni-Livny et al., 1998; Morsali et al., 2005; Esteban-Gómez et al., 2006; Morsali , 2004).
The one-dimensional 2). N—H···O and N—H···N hydrogen bonding is observed along the chains parallel to [010] (see Table 4).
chain of (I) propagates via inversion centers and is extended into two dimensions via an acetate ligand of type (c) that bridges Pb2 and Pb3iii, as shown in Fig. 6, where the symmetry designators are defined. The result is an extended structure composed of planes parallel to (20In compounds (II) and (III), chains parallel to [100] are observed. An extensive N—H···O hydrogen-bonding network is found along the chains (see Tables 5 and 6). For (III), the nitrile group affords the opportunity for additional hydrogen bonding. As seen in Fig. 7, this results in R22(14) rings involving N—H···N≡C hydrogen bonds between adjacent chains.
Based on calculations performed with PLATON (Spek, 2009), no solvent-accessible voids are found in (I), (II), or (III).
Numerous examples of polymeric lead(II) compounds with bridging carboxylate ligands possessing a range of coordination modes have been reported (for examples, see Lyczko & Bak, 2008; Dai et al., 2009; Mohammadnezhad et al., 2010; Yilmaz et al., 2003; Foreman et al., 2001). A zinc metal organic framework with bridging acetate ligands and a monodentate 4-chlorobenzene-1,2-diamine ligand has been reported (Geiger & Parsons, 2014).
Benzene-1,2-diamine (0.109 g, 0.93 mmol) was stirred into a solution of lead(II) acetate trihydrate (0.175 g, 0.46 mmol) in ethanol (10 ml). The solution was heated to a gentle reflux for 2 h and then cooled to room temperature. The solvent was reduced in volume by slow evaporation. After 5 d, crystals suitable for X-ray analysis had formed. Further solvent reduction resulted in precipitation of excess diamine, so the overall yield was not determined. Selected IR bands (diamond anvil, cm-1): 3353 (br), 1505 (s), 1932 (s), 1284 (s) 1045 (w), 1018 (w), 939 (w).
4-Chlorobenzene-1,2-diamine (0.106 g, 0.75 mmol) was dissolved in boiling ethanol (10 ml) and lead(II) acetate trihydrate (0.134 g, 0.35 mmol) was added with stirring. The resulting solution was refluxed for 4 h, removed from the heat and the solvent was allowed to slowly evaporate. The residue obtained was dissolved in hot methanol and passed through a 45 µm pore filter. Crystals suitable for X-ray analysis were obtained after slow evaporation of the solvent. Further solvent reduction resulted in precipitation of excess diamine and so the overall yield was not determined. Selected IR bands (diamond anvil, cm-1): 3334 (br), 1537 (s), 1393 (s), 1337 (s), 1018 (s).
To a solution of lead(II) acetate trihydrate (0.149 g, 0.39 mmol) in ethanol (10 ml) were added 3,4-diaminobenzonitrile (0.104 g, 0.75 mmol). The resulting solution was stirred at a gentle reflux for 1 h. The solvent was allowed to slowly evaporate over a period of 3 d, resulting in crystals suitable for X-ray analysis. Further solvent reduction resulted in precipitation of excess diamine and so the overall yield was not determined. Selected IR bands (diamond anvil, cm-1): 3432 (w), 3316 (w), 2213 (s), 1581 (s), 1557 (s), 1394 (s), 1301 (s), 1020 (s).
For related literature, see: Dai et al. (2009); Devereux et al. (2011); Dey et al. (2014); Esteban-Gómez, Platas-Iglesias, Enriquez-Pérez & Avecilla (2006); Farha & Hupp (2010); Foreman et al. (2001); Geiger & Parsons (2014); Imran et al. (2014); Kreno et al. (2012); Lyczko & Bak (2008); Mohammadnezhad et al. (2010); Morsali (2004); Morsali et al. (2005); Park & Barbier (2001); Shimoni-Livny, Glusker & Bock (1998); Spek (2009); Wang & Liebau (2007); Yilmaz et al. (2003).
detailsCrystal data, data collection and structure
details are summarized in Table 7. All H atoms were observed in difference Fourier maps. C-bonded H atoms were refined using a riding model, with C—H = 0.98 Å for the methyl groups and 0.95 Å for the aromatic ring. The C—H hydrogen isotropic displacement parameters were fixed using the approximation Uiso(H) = 1.5Ueq(C) for the methyl H atoms and 1.2Ueq(C) for the aromatic H atoms. The atomic coordinates for the amine H atoms were refined using an N—H bond-distance restraint of 0.88 (2) Å and the H-atom isotropic displacement parameters were set using the approximation Uiso(H) = 1.5Ueq(N). Late in the a correction for extinction was applied for each of the structures. For (I), the highest residual electron-density peak is 0.94 Å from Pb2 and the deepest hole is 1.20 Å from Pb3. The highest residual electron-density peak is 0.89 Å and the deepest hole is 0.91 Å from Pb1 in (II). For (III), the highest residual electron-density peak and the deepest hole are 0.92 Å and 0.82 Å, respectively, from Pb1.For all compounds, data collection: APEX2 (Bruker, 2013); cell
APEX2 (Bruker, 2013); data reduction: SAINT (Bruker, 2013); program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL2014 (Sheldrick, 2008); molecular graphics: PLATON (Spek, 2009), Mercury (Macrae et al., 2006) and ORTEP-3 for Windows (Farrugia, 2012); software used to prepare material for publication: publCIF (Westrip, 2010).Fig. 1. The three acetate coordination modes observed in (I), (II), and (III), showing (a) µ2-acetato-κ2O,O', (b) µ2-acetato-κ4O,O':O:O', and (c) µ2-acetato-κ3O,O':O | |
Fig. 2. The atom-labeling scheme for (I). Anisotropic displacement parameters are drawn at the 50% probability level. | |
Fig. 3. A view of (I) in which the two halves of the asymmetric unit related by the pseudo-translation are color coded. H atoms have been omitted for clarity. | |
Fig. 4. The atom-labeling scheme for (II). Anisotropic displacement parameters are drawn at the 50% probability level. [Symmetry identifiers: (i) -x+1, -y, -z+1; (ii) -x+2, -y, -z+1.] | |
Fig. 5. The atom-labeling scheme for (III). Anisotropic displacement parameters are drawn at the 50% probability level. [Symmetry identifiers: (i) -x+1, -y, -z+1; (ii) -x+2, -y, -z+1.] | |
Fig. 6. Representation of the PbII coordination environments observed in (I), (II), and (III). Symmetry identifiers are those used in Tables 1, 2 and 3. | |
Fig. 7. Packing diagram for (I), showing the linked chains. Hydrogen bonds are represented by dashed bonds. H atoms not involved in the hydrogen-bonding network are not shown. [Symmetry identifiers: (i) -x+2, -y+1, -z+1; (ii) x+1/2, y+1/2, z+1/2; (iii) x-1/2, -y+1/2, z-1/2; (iv) -x+3/2, y+1/2, -z+1/2; (v) -x+5/2, y+1/2, -z+3/2.] | |
Fig. 8. Packing diagram for (III), showing the chains joined by N—H···N≡C hydrogen bonds. Hydrogen bonds are represented by by dashed lines. H atoms not involved in the hydrogen-bonding network are not shown. [Symmetry identifiers: (i) -x+1, -y+1, -z+1; (ii) -x+2, -y+1, -z+1; (iii) x+1, y-1, z-1; (iv) -x+2, -y, -z; (v) x, y-1, z-1.] |
[Pb4(C2H3O2)8(C6H8N2)2] | F(000) = 2768 |
Mr = 1517.40 | Dx = 2.646 Mg m−3 |
Monoclinic, P21/n | Mo Kα radiation, λ = 0.71073 Å |
a = 11.1447 (14) Å | Cell parameters from 426 reflections |
b = 29.694 (4) Å | θ = 0.1–26.5° |
c = 11.8597 (14) Å | µ = 17.70 mm−1 |
β = 103.941 (4)° | T = 200 K |
V = 3809.1 (8) Å3 | Plate, clear colorless |
Z = 4 | 0.50 × 0.30 × 0.10 mm |
Bruker SMART X2S benchtop diffractometer | 7708 independent reflections |
Radiation source: sealed microfocus tube | 5239 reflections with I > 2σ(I) |
Doubly curved silicon crystal monochromator | Rint = 0.080 |
ω scans | θmax = 26.3°, θmin = 1.9° |
Absorption correction: multi-scan (SADABS; Bruker, 2013) | h = −13→12 |
Tmin = 0.12, Tmax = 0.27 | k = −36→35 |
26670 measured reflections | l = −9→14 |
Refinement on F2 | Secondary atom site location: difference Fourier map |
Least-squares matrix: full | Hydrogen site location: mixed |
R[F2 > 2σ(F2)] = 0.042 | H atoms treated by a mixture of independent and constrained refinement |
wR(F2) = 0.093 | w = 1/[σ2(Fo2) + (0.0015P)2] where P = (Fo2 + 2Fc2)/3 |
S = 0.96 | (Δ/σ)max = 0.001 |
7708 reflections | Δρmax = 2.12 e Å−3 |
502 parameters | Δρmin = −1.97 e Å−3 |
122 restraints | Extinction correction: SHELXL2014 (Sheldrick, 2008) |
Primary atom site location: structure-invariant direct methods | Extinction coefficient: 0.000185 (12) |
[Pb4(C2H3O2)8(C6H8N2)2] | V = 3809.1 (8) Å3 |
Mr = 1517.40 | Z = 4 |
Monoclinic, P21/n | Mo Kα radiation |
a = 11.1447 (14) Å | µ = 17.70 mm−1 |
b = 29.694 (4) Å | T = 200 K |
c = 11.8597 (14) Å | 0.50 × 0.30 × 0.10 mm |
β = 103.941 (4)° |
Bruker SMART X2S benchtop diffractometer | 7708 independent reflections |
Absorption correction: multi-scan (SADABS; Bruker, 2013) | 5239 reflections with I > 2σ(I) |
Tmin = 0.12, Tmax = 0.27 | Rint = 0.080 |
26670 measured reflections |
R[F2 > 2σ(F2)] = 0.042 | 122 restraints |
wR(F2) = 0.093 | H atoms treated by a mixture of independent and constrained refinement |
S = 0.96 | Δρmax = 2.12 e Å−3 |
7708 reflections | Δρmin = −1.97 e Å−3 |
502 parameters |
Geometry. All e.s.d.'s (except the e.s.d. in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell e.s.d.'s are taken into account individually in the estimation of e.s.d.'s in distances, angles and torsion angles; correlations between e.s.d.'s in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell e.s.d.'s is used for estimating e.s.d.'s involving l.s. planes. |
x | y | z | Uiso*/Ueq | ||
Pb1 | 0.96723 (3) | 0.43662 (2) | 0.39419 (3) | 0.02150 (11) | |
Pb2 | 1.09865 (4) | 0.31230 (2) | 0.58736 (3) | 0.02407 (11) | |
Pb3 | 0.98507 (3) | 0.18567 (2) | 0.40741 (3) | 0.02108 (11) | |
Pb4 | 1.07290 (3) | 0.05882 (2) | 0.60542 (3) | 0.02225 (11) | |
O1 | 0.7399 (6) | 0.4682 (2) | 0.3553 (6) | 0.0339 (18) | |
O2 | 0.7962 (6) | 0.4054 (2) | 0.4545 (6) | 0.0276 (17) | |
O3 | 1.0040 (7) | 0.4700 (2) | 0.5906 (6) | 0.0332 (18) | |
O4 | 1.0871 (7) | 0.4030 (2) | 0.5891 (6) | 0.0326 (18) | |
O5 | 1.0131 (6) | 0.3484 (2) | 0.3958 (6) | 0.0277 (17) | |
O6 | 1.0227 (7) | 0.2751 (2) | 0.3972 (6) | 0.0298 (17) | |
O7 | 1.3471 (7) | 0.3072 (3) | 0.6898 (6) | 0.051 (2) | |
O8 | 1.2763 (7) | 0.3133 (3) | 0.4997 (6) | 0.047 (2) | |
O9 | 1.1040 (7) | 0.2231 (2) | 0.6007 (6) | 0.037 (2) | |
O10 | 1.0341 (6) | 0.1551 (2) | 0.6181 (5) | 0.0277 (17) | |
O11 | 0.8067 (7) | 0.2193 (2) | 0.4613 (7) | 0.039 (2) | |
O12 | 0.7851 (6) | 0.1481 (2) | 0.4133 (6) | 0.0344 (18) | |
O13 | 1.0352 (6) | 0.0970 (2) | 0.4139 (6) | 0.0278 (17) | |
O14 | 0.9730 (7) | 0.0274 (2) | 0.4033 (6) | 0.0331 (19) | |
O15 | 1.3094 (7) | 0.0892 (2) | 0.6606 (6) | 0.039 (2) | |
O16 | 1.2513 (6) | 0.0321 (2) | 0.5413 (6) | 0.0328 (18) | |
N1 | 0.8445 (8) | 0.3134 (3) | 0.5734 (7) | 0.0268 (19) | |
H1A | 0.825 (8) | 0.3367 (16) | 0.525 (6) | 0.032* | |
H1B | 0.811 (8) | 0.2888 (15) | 0.538 (6) | 0.032* | |
N2 | 0.8160 (13) | 0.2434 (4) | 0.7296 (9) | 0.069 (4) | |
H2A | 0.796 (12) | 0.2323 (18) | 0.657 (3) | 0.082* | |
H2B | 0.818 (12) | 0.2193 (12) | 0.776 (5) | 0.082* | |
N3 | 0.8106 (9) | 0.0629 (3) | 0.5758 (7) | 0.034 (2) | |
H3A | 0.794 (9) | 0.0893 (12) | 0.543 (7) | 0.04* | |
H3B | 0.774 (8) | 0.0418 (19) | 0.527 (6) | 0.04* | |
N4 | 0.8000 (10) | 0.1348 (3) | 0.7272 (10) | 0.052 (3) | |
H4A | 0.827 (9) | 0.146 (3) | 0.798 (4) | 0.062* | |
H4B | 0.851 (8) | 0.142 (3) | 0.684 (7) | 0.062* | |
C1 | 0.8190 (9) | 0.3205 (3) | 0.6868 (8) | 0.026 (2) | |
C2 | 0.8133 (10) | 0.3672 (4) | 0.7200 (9) | 0.040 (3) | |
H2 | 0.8224 | 0.3908 | 0.6687 | 0.048* | |
C3 | 0.7946 (11) | 0.3763 (4) | 0.8272 (10) | 0.049 (3) | |
H3 | 0.7895 | 0.4067 | 0.8512 | 0.059* | |
C4 | 0.7832 (10) | 0.3414 (4) | 0.9007 (10) | 0.040 (3) | |
H4 | 0.7714 | 0.3487 | 0.9753 | 0.048* | |
C5 | 0.7879 (10) | 0.2975 (4) | 0.8724 (9) | 0.038 (3) | |
H5 | 0.7771 | 0.2745 | 0.9248 | 0.045* | |
C6 | 0.8096 (10) | 0.2864 (4) | 0.7613 (9) | 0.039 (3) | |
C8 | 0.7861 (9) | 0.0904 (4) | 0.7650 (9) | 0.033 (2) | |
C7 | 0.7876 (9) | 0.0548 (3) | 0.6853 (9) | 0.028 (2) | |
C12 | 0.7734 (10) | 0.0105 (4) | 0.7208 (9) | 0.035 (3) | |
H12 | 0.7772 | −0.0137 | 0.6695 | 0.042* | |
C11 | 0.7537 (11) | 0.0016 (4) | 0.8298 (9) | 0.043 (3) | |
H11 | 0.7385 | −0.0283 | 0.851 | 0.051* | |
C10 | 0.7565 (10) | 0.0366 (4) | 0.9073 (10) | 0.038 (3) | |
H10 | 0.7481 | 0.0302 | 0.9835 | 0.046* | |
C9 | 0.7711 (9) | 0.0805 (4) | 0.8758 (9) | 0.031 (2) | |
H9 | 0.7709 | 0.1042 | 0.9297 | 0.037* | |
C13 | 0.7171 (9) | 0.4340 (3) | 0.4121 (8) | 0.021 (2) | |
C14 | 0.5894 (9) | 0.4294 (4) | 0.4293 (10) | 0.044 (3) | |
H14A | 0.5768 | 0.3986 | 0.4536 | 0.066* | |
H14B | 0.5292 | 0.4361 | 0.3562 | 0.066* | |
H14C | 0.5783 | 0.4506 | 0.4894 | 0.066* | |
C15 | 1.0659 (9) | 0.4370 (3) | 0.6435 (8) | 0.021 (2) | |
C16 | 1.1129 (12) | 0.4395 (4) | 0.7736 (9) | 0.052 (4) | |
H16A | 1.1738 | 0.4638 | 0.7937 | 0.077* | |
H16B | 1.1519 | 0.4108 | 0.8026 | 0.077* | |
H16C | 1.0437 | 0.4454 | 0.8092 | 0.077* | |
C17 | 0.9977 (8) | 0.3114 (3) | 0.3407 (7) | 0.019 (2) | |
C18 | 0.9578 (11) | 0.3100 (4) | 0.2115 (8) | 0.043 (3) | |
H18A | 1.0306 | 0.3075 | 0.1792 | 0.065* | |
H18B | 0.9126 | 0.3377 | 0.183 | 0.065* | |
H18C | 0.9038 | 0.2839 | 0.1872 | 0.065* | |
C19 | 1.3646 (10) | 0.3104 (4) | 0.5901 (10) | 0.033 (3) | |
C20 | 1.4962 (10) | 0.3101 (4) | 0.5755 (10) | 0.053 (3) | |
H20A | 1.5138 | 0.3389 | 0.5423 | 0.08* | |
H20B | 1.5059 | 0.2855 | 0.5234 | 0.08* | |
H20C | 1.5538 | 0.3058 | 0.6514 | 0.08* | |
C21 | 1.0930 (9) | 0.1891 (4) | 0.6614 (8) | 0.024 (2) | |
C22 | 1.1513 (12) | 0.1894 (4) | 0.7902 (8) | 0.053 (4) | |
H22A | 1.2099 | 0.2145 | 0.8089 | 0.08* | |
H22B | 1.1951 | 0.1609 | 0.8125 | 0.08* | |
H22C | 1.0867 | 0.1929 | 0.8329 | 0.08* | |
C23 | 0.7422 (10) | 0.1834 (4) | 0.4410 (9) | 0.036 (3) | |
C24 | 0.6089 (10) | 0.1854 (4) | 0.4486 (10) | 0.045 (3) | |
H24A | 0.5571 | 0.1956 | 0.374 | 0.068* | |
H24B | 0.6011 | 0.2066 | 0.5098 | 0.068* | |
H24C | 0.5821 | 0.1555 | 0.4669 | 0.068* | |
C25 | 0.9838 (9) | 0.0635 (3) | 0.3540 (8) | 0.024 (2) | |
C26 | 0.9410 (10) | 0.0680 (4) | 0.2243 (8) | 0.042 (3) | |
H26A | 0.9203 | 0.0381 | 0.1897 | 0.063* | |
H26B | 1.007 | 0.0813 | 0.1936 | 0.063* | |
H26C | 0.8677 | 0.0873 | 0.2048 | 0.063* | |
C27 | 1.3316 (9) | 0.0598 (4) | 0.5943 (8) | 0.028 (3) | |
C28 | 1.4623 (9) | 0.0562 (4) | 0.5755 (10) | 0.045 (3) | |
H28A | 1.4851 | 0.0847 | 0.5449 | 0.068* | |
H28B | 1.4649 | 0.0319 | 0.52 | 0.068* | |
H28C | 1.5207 | 0.0495 | 0.6497 | 0.068* |
U11 | U22 | U33 | U12 | U13 | U23 | |
Pb1 | 0.0228 (2) | 0.0223 (2) | 0.0190 (2) | 0.00101 (17) | 0.00423 (15) | 0.00183 (17) |
Pb2 | 0.0257 (2) | 0.0232 (2) | 0.0211 (2) | −0.00045 (18) | 0.00127 (16) | 0.00155 (19) |
Pb3 | 0.0208 (2) | 0.0210 (2) | 0.02038 (19) | −0.00022 (17) | 0.00290 (15) | −0.00038 (18) |
Pb4 | 0.0243 (2) | 0.0220 (2) | 0.0198 (2) | −0.00163 (17) | 0.00413 (16) | −0.00230 (17) |
O1 | 0.030 (4) | 0.031 (4) | 0.045 (5) | 0.005 (4) | 0.018 (4) | 0.006 (4) |
O2 | 0.024 (4) | 0.026 (4) | 0.031 (4) | 0.005 (3) | 0.004 (3) | 0.009 (3) |
O3 | 0.042 (5) | 0.024 (4) | 0.030 (4) | 0.001 (4) | 0.000 (4) | −0.004 (3) |
O4 | 0.050 (5) | 0.020 (4) | 0.024 (4) | 0.005 (4) | 0.002 (4) | −0.005 (3) |
O5 | 0.039 (5) | 0.016 (4) | 0.024 (4) | 0.006 (3) | −0.001 (3) | 0.000 (3) |
O6 | 0.038 (5) | 0.023 (4) | 0.026 (4) | −0.003 (3) | 0.004 (3) | 0.000 (3) |
O7 | 0.037 (5) | 0.084 (7) | 0.029 (4) | 0.002 (5) | 0.001 (4) | −0.005 (5) |
O8 | 0.030 (5) | 0.068 (6) | 0.038 (4) | −0.002 (4) | −0.003 (4) | 0.012 (4) |
O9 | 0.046 (5) | 0.028 (4) | 0.033 (4) | −0.014 (4) | −0.001 (4) | 0.003 (4) |
O10 | 0.041 (5) | 0.018 (4) | 0.023 (4) | −0.004 (3) | 0.005 (3) | 0.004 (3) |
O11 | 0.038 (5) | 0.032 (5) | 0.054 (5) | −0.005 (4) | 0.022 (4) | −0.014 (4) |
O12 | 0.030 (4) | 0.024 (4) | 0.051 (5) | −0.006 (3) | 0.014 (4) | −0.009 (4) |
O13 | 0.036 (4) | 0.022 (4) | 0.031 (4) | −0.002 (3) | 0.017 (3) | 0.000 (3) |
O14 | 0.049 (5) | 0.022 (4) | 0.028 (4) | −0.017 (4) | 0.009 (4) | −0.006 (3) |
O15 | 0.041 (5) | 0.040 (5) | 0.043 (5) | −0.004 (4) | 0.022 (4) | −0.017 (4) |
O16 | 0.028 (4) | 0.026 (4) | 0.043 (5) | −0.004 (3) | 0.004 (4) | −0.014 (4) |
N1 | 0.033 (5) | 0.023 (5) | 0.025 (4) | 0.000 (4) | 0.008 (4) | −0.002 (4) |
N2 | 0.095 (10) | 0.047 (5) | 0.069 (8) | 0.000 (5) | 0.031 (8) | 0.000 (5) |
N3 | 0.047 (6) | 0.026 (5) | 0.031 (4) | −0.004 (5) | 0.016 (4) | 0.003 (4) |
N4 | 0.062 (8) | 0.032 (5) | 0.066 (7) | −0.005 (4) | 0.023 (6) | 0.002 (5) |
C1 | 0.021 (5) | 0.034 (5) | 0.020 (4) | −0.002 (4) | 0.001 (4) | 0.003 (3) |
C2 | 0.045 (7) | 0.044 (5) | 0.031 (5) | 0.000 (5) | 0.009 (5) | −0.006 (4) |
C3 | 0.055 (8) | 0.048 (6) | 0.046 (5) | 0.007 (5) | 0.016 (5) | 0.000 (4) |
C4 | 0.028 (6) | 0.051 (5) | 0.040 (6) | 0.001 (5) | 0.005 (5) | 0.006 (4) |
C5 | 0.026 (6) | 0.049 (5) | 0.035 (5) | 0.003 (5) | 0.001 (4) | 0.006 (4) |
C6 | 0.038 (7) | 0.042 (5) | 0.037 (5) | −0.001 (4) | 0.007 (4) | 0.008 (4) |
C8 | 0.023 (6) | 0.033 (5) | 0.041 (5) | −0.003 (4) | 0.006 (4) | −0.002 (4) |
C7 | 0.022 (5) | 0.033 (4) | 0.027 (4) | −0.002 (4) | 0.003 (4) | 0.001 (3) |
C12 | 0.036 (6) | 0.031 (5) | 0.037 (5) | −0.006 (4) | 0.007 (4) | 0.000 (4) |
C11 | 0.045 (7) | 0.041 (6) | 0.044 (5) | 0.002 (5) | 0.016 (5) | 0.008 (4) |
C10 | 0.031 (6) | 0.043 (5) | 0.041 (5) | 0.004 (5) | 0.010 (5) | 0.005 (4) |
C9 | 0.019 (5) | 0.040 (5) | 0.031 (5) | 0.005 (4) | 0.002 (4) | −0.003 (4) |
C13 | 0.022 (5) | 0.028 (6) | 0.016 (5) | −0.005 (5) | 0.009 (4) | −0.009 (5) |
C14 | 0.026 (6) | 0.061 (9) | 0.045 (7) | −0.005 (6) | 0.010 (5) | −0.015 (7) |
C15 | 0.029 (6) | 0.014 (5) | 0.019 (5) | −0.007 (5) | 0.004 (4) | 0.000 (5) |
C16 | 0.064 (9) | 0.058 (9) | 0.027 (7) | 0.013 (7) | −0.001 (6) | 0.003 (6) |
C17 | 0.018 (5) | 0.020 (5) | 0.019 (5) | 0.005 (4) | 0.003 (4) | −0.004 (5) |
C18 | 0.064 (9) | 0.040 (7) | 0.024 (6) | −0.006 (7) | 0.006 (6) | 0.000 (6) |
C19 | 0.024 (6) | 0.025 (6) | 0.048 (7) | −0.007 (5) | 0.005 (5) | 0.001 (6) |
C20 | 0.035 (8) | 0.067 (9) | 0.055 (8) | −0.008 (7) | 0.005 (6) | 0.010 (8) |
C21 | 0.025 (6) | 0.020 (6) | 0.027 (5) | 0.002 (5) | 0.005 (4) | −0.004 (5) |
C22 | 0.065 (9) | 0.068 (9) | 0.022 (6) | −0.014 (8) | 0.001 (6) | 0.017 (7) |
C23 | 0.030 (7) | 0.042 (8) | 0.033 (6) | 0.001 (6) | 0.006 (5) | −0.003 (6) |
C24 | 0.025 (7) | 0.057 (8) | 0.056 (8) | 0.001 (6) | 0.015 (6) | −0.001 (7) |
C25 | 0.026 (6) | 0.025 (6) | 0.021 (5) | 0.001 (5) | 0.005 (4) | −0.006 (5) |
C26 | 0.037 (7) | 0.068 (9) | 0.016 (5) | −0.004 (6) | −0.004 (5) | 0.007 (6) |
C27 | 0.023 (6) | 0.048 (8) | 0.013 (5) | 0.002 (5) | 0.003 (4) | 0.013 (5) |
C28 | 0.025 (6) | 0.061 (8) | 0.053 (8) | −0.004 (6) | 0.014 (6) | −0.018 (7) |
Pb1—O2 | 2.380 (6) | N4—H4A | 0.88 (2) |
Pb1—O3 | 2.474 (7) | N4—H4B | 0.88 (2) |
Pb1—O4 | 2.576 (7) | C1—C6 | 1.366 (13) |
Pb1—O1 | 2.636 (7) | C1—C2 | 1.445 (14) |
Pb1—O5 | 2.667 (6) | C2—C3 | 1.364 (14) |
Pb1—O3i | 2.792 (7) | C2—H2 | 0.95 |
Pb2—O8 | 2.448 (8) | C3—C4 | 1.380 (14) |
Pb2—O6 | 2.470 (7) | C3—H3 | 0.95 |
Pb2—O5 | 2.485 (6) | C4—C5 | 1.352 (14) |
Pb2—O9 | 2.654 (7) | C4—H4 | 0.95 |
Pb2—O4 | 2.696 (6) | C5—C6 | 1.434 (14) |
Pb2—O7 | 2.747 (8) | C5—H5 | 0.95 |
Pb2—N1 | 2.797 (9) | C8—C9 | 1.395 (14) |
Pb3—O11 | 2.443 (7) | C8—C7 | 1.421 (14) |
Pb3—O12 | 2.509 (7) | C7—C12 | 1.401 (13) |
Pb3—O10 | 2.590 (6) | C12—C11 | 1.388 (14) |
Pb3—O9 | 2.604 (7) | C12—H12 | 0.95 |
Pb3—O7ii | 2.675 (7) | C11—C10 | 1.382 (14) |
Pb3—O13 | 2.688 (6) | C11—H11 | 0.95 |
Pb3—O6 | 2.696 (7) | C10—C9 | 1.377 (14) |
Pb4—O16 | 2.427 (7) | C10—H10 | 0.95 |
Pb4—O13 | 2.482 (7) | C9—H9 | 0.95 |
Pb4—O14 | 2.563 (7) | C13—C14 | 1.492 (13) |
Pb4—O14iii | 2.609 (7) | C14—H14A | 0.98 |
Pb4—O15 | 2.713 (7) | C14—H14B | 0.98 |
Pb4—O10 | 2.901 (6) | C14—H14C | 0.98 |
Pb4—N3 | 2.862 (10) | C15—C16 | 1.507 (13) |
O1—C13 | 1.279 (11) | C16—H16A | 0.98 |
O2—C13 | 1.239 (11) | C16—H16B | 0.98 |
O3—C15 | 1.273 (11) | C16—H16C | 0.98 |
O4—C15 | 1.252 (11) | C17—C18 | 1.490 (12) |
O5—C17 | 1.270 (10) | C18—H18A | 0.98 |
O6—C17 | 1.263 (11) | C18—H18B | 0.98 |
O7—C19 | 1.248 (12) | C18—H18C | 0.98 |
O7—Pb3iv | 2.675 (7) | C19—C20 | 1.517 (14) |
O8—C19 | 1.272 (12) | C20—H20A | 0.98 |
O9—C21 | 1.262 (11) | C20—H20B | 0.98 |
O10—C21 | 1.246 (11) | C20—H20C | 0.98 |
O11—C23 | 1.276 (12) | C21—C22 | 1.509 (13) |
O12—C23 | 1.230 (12) | C22—H22A | 0.98 |
O13—C25 | 1.276 (11) | C22—H22B | 0.98 |
O14—C25 | 1.240 (11) | C22—H22C | 0.98 |
O14—Pb4iii | 2.609 (7) | C23—C24 | 1.511 (14) |
O15—C27 | 1.239 (12) | C24—H24A | 0.98 |
O16—C27 | 1.266 (12) | C24—H24B | 0.98 |
N1—C1 | 1.456 (11) | C24—H24C | 0.98 |
N1—H1A | 0.89 (2) | C25—C26 | 1.503 (13) |
N1—H1B | 0.88 (2) | C26—H26A | 0.98 |
N2—C6 | 1.336 (14) | C26—H26B | 0.98 |
N2—H2A | 0.899 (19) | C26—H26C | 0.98 |
N2—H2B | 0.898 (19) | C27—C28 | 1.530 (13) |
N3—C7 | 1.403 (12) | C28—H28A | 0.98 |
N3—H3A | 0.87 (2) | C28—H28B | 0.98 |
N3—H3B | 0.88 (2) | C28—H28C | 0.98 |
N4—C8 | 1.415 (14) | ||
O2—Pb1—O3 | 80.6 (2) | C8—N4—H4A | 95 (7) |
O2—Pb1—O4 | 81.9 (2) | C8—N4—H4B | 124 (7) |
O3—Pb1—O4 | 51.5 (2) | H4A—N4—H4B | 110 (5) |
O2—Pb1—O1 | 52.1 (2) | C6—C1—C2 | 121.3 (10) |
O3—Pb1—O1 | 87.5 (2) | C6—C1—N1 | 123.5 (9) |
O4—Pb1—O1 | 124.3 (2) | C2—C1—N1 | 115.0 (9) |
O2—Pb1—O5 | 77.4 (2) | C3—C2—C1 | 118.2 (10) |
O3—Pb1—O5 | 113.5 (2) | C3—C2—H2 | 120.9 |
O4—Pb1—O5 | 63.6 (2) | C1—C2—H2 | 120.9 |
O1—Pb1—O5 | 121.7 (2) | C2—C3—C4 | 119.8 (11) |
O8—Pb2—O6 | 75.6 (2) | C2—C3—H3 | 120.1 |
O8—Pb2—O5 | 77.2 (2) | C4—C3—H3 | 120.1 |
O6—Pb2—O5 | 52.2 (2) | C5—C4—C3 | 123.6 (11) |
O8—Pb2—O9 | 91.6 (2) | C5—C4—H4 | 118.2 |
O6—Pb2—O9 | 66.8 (2) | C3—C4—H4 | 118.2 |
O5—Pb2—O9 | 118.9 (2) | C4—C5—C6 | 118.4 (11) |
O8—Pb2—O4 | 92.1 (2) | C4—C5—H5 | 120.8 |
O6—Pb2—O4 | 116.5 (2) | C6—C5—H5 | 120.8 |
O5—Pb2—O4 | 64.4 (2) | N2—C6—C1 | 120.6 (11) |
O9—Pb2—O4 | 175.6 (2) | N2—C6—C5 | 120.7 (10) |
O8—Pb2—O7 | 49.9 (2) | C1—C6—C5 | 118.7 (11) |
O6—Pb2—O7 | 117.8 (2) | C9—C8—N4 | 122.8 (10) |
O5—Pb2—O7 | 123.5 (2) | C9—C8—C7 | 119.6 (10) |
O9—Pb2—O7 | 85.0 (2) | N4—C8—C7 | 117.6 (10) |
O4—Pb2—O7 | 95.5 (2) | C12—C7—N3 | 119.9 (9) |
O8—Pb2—N1 | 152.3 (2) | C12—C7—C8 | 118.5 (10) |
O6—Pb2—N1 | 80.3 (2) | N3—C7—C8 | 121.5 (9) |
O5—Pb2—N1 | 77.3 (2) | C11—C12—C7 | 121.0 (10) |
O9—Pb2—N1 | 91.3 (2) | C11—C12—H12 | 119.5 |
O4—Pb2—N1 | 86.5 (2) | C7—C12—H12 | 119.5 |
O7—Pb2—N1 | 157.7 (2) | C10—C11—C12 | 119.5 (11) |
O11—Pb3—O12 | 52.5 (2) | C10—C11—H11 | 120.3 |
O11—Pb3—O10 | 83.5 (2) | C12—C11—H11 | 120.3 |
O12—Pb3—O10 | 78.4 (2) | C9—C10—C11 | 121.1 (11) |
O11—Pb3—O9 | 82.5 (2) | C9—C10—H10 | 119.4 |
O12—Pb3—O9 | 115.6 (2) | C11—C10—H10 | 119.4 |
O10—Pb3—O9 | 49.9 (2) | C10—C9—C8 | 120.2 (10) |
O11—Pb3—O7ii | 84.6 (3) | C10—C9—H9 | 119.9 |
O12—Pb3—O7ii | 75.7 (2) | C8—C9—H9 | 119.9 |
O10—Pb3—O7ii | 153.7 (2) | O2—C13—O1 | 123.1 (9) |
O9—Pb3—O7ii | 150.2 (2) | O2—C13—C14 | 119.4 (9) |
O11—Pb3—O13 | 124.7 (2) | O1—C13—C14 | 117.4 (9) |
O12—Pb3—O13 | 75.1 (2) | C13—C14—H14A | 109.5 |
O10—Pb3—O13 | 68.6 (2) | C13—C14—H14B | 109.5 |
O9—Pb3—O13 | 109.5 (2) | H14A—C14—H14B | 109.5 |
O7ii—Pb3—O13 | 99.9 (2) | C13—C14—H14C | 109.5 |
O11—Pb3—O6 | 75.7 (2) | H14A—C14—H14C | 109.5 |
O12—Pb3—O6 | 126.0 (2) | H14B—C14—H14C | 109.5 |
O10—Pb3—O6 | 112.9 (2) | O4—C15—O3 | 120.9 (9) |
O9—Pb3—O6 | 64.4 (2) | O4—C15—C16 | 120.2 (9) |
O7ii—Pb3—O6 | 86.5 (2) | O3—C15—C16 | 118.8 (9) |
O13—Pb3—O6 | 158.8 (2) | C15—C16—H16A | 109.5 |
O16—Pb4—O13 | 80.4 (2) | C15—C16—H16B | 109.5 |
O16—Pb4—O14 | 78.0 (2) | H16A—C16—H16B | 109.5 |
O13—Pb4—O14 | 51.0 (2) | C15—C16—H16C | 109.5 |
O16—Pb4—O14iii | 80.4 (2) | H16A—C16—H16C | 109.5 |
O13—Pb4—O14iii | 115.1 (2) | H16B—C16—H16C | 109.5 |
O14—Pb4—O14iii | 64.5 (3) | O6—C17—O5 | 118.7 (8) |
O16—Pb4—O15 | 50.4 (2) | O6—C17—C18 | 119.7 (9) |
O13—Pb4—O15 | 90.5 (2) | O5—C17—C18 | 121.5 (9) |
O14—Pb4—O15 | 121.6 (2) | C17—C18—H18A | 109.5 |
O14iii—Pb4—O15 | 120.4 (2) | C17—C18—H18B | 109.5 |
O16—Pb4—N3 | 149.9 (2) | H18A—C18—H18B | 109.5 |
O13—Pb4—N3 | 85.7 (2) | C17—C18—H18C | 109.5 |
O14—Pb4—N3 | 72.5 (2) | H18A—C18—H18C | 109.5 |
O14iii—Pb4—N3 | 81.5 (2) | H18B—C18—H18C | 109.5 |
O15—Pb4—N3 | 156.9 (2) | O7—C19—O8 | 122.5 (10) |
C13—O1—Pb1 | 85.9 (5) | O7—C19—C20 | 119.0 (10) |
C13—O2—Pb1 | 98.9 (6) | O8—C19—C20 | 118.5 (10) |
C15—O3—Pb1 | 95.9 (6) | C19—C20—H20A | 109.5 |
C15—O4—Pb1 | 91.6 (6) | C19—C20—H20B | 109.5 |
C15—O4—Pb2 | 145.7 (6) | H20A—C20—H20B | 109.5 |
Pb1—O4—Pb2 | 113.3 (2) | C19—C20—H20C | 109.5 |
C17—O5—Pb2 | 94.1 (5) | H20A—C20—H20C | 109.5 |
C17—O5—Pb1 | 147.7 (6) | H20B—C20—H20C | 109.5 |
Pb2—O5—Pb1 | 117.5 (2) | O10—C21—O9 | 121.7 (9) |
C17—O6—Pb2 | 95.0 (5) | O10—C21—C22 | 118.5 (9) |
C17—O6—Pb3 | 147.9 (6) | O9—C21—C22 | 119.8 (9) |
Pb2—O6—Pb3 | 115.0 (3) | C21—C22—H22A | 109.5 |
C19—O7—Pb3iv | 136.3 (7) | C21—C22—H22B | 109.5 |
C19—O7—Pb2 | 87.0 (6) | H22A—C22—H22B | 109.5 |
Pb3iv—O7—Pb2 | 134.9 (3) | C21—C22—H22C | 109.5 |
C19—O8—Pb2 | 100.5 (6) | H22A—C22—H22C | 109.5 |
C21—O9—Pb3 | 93.6 (6) | H22B—C22—H22C | 109.5 |
C21—O9—Pb2 | 145.9 (6) | O12—C23—O11 | 121.8 (10) |
Pb3—O9—Pb2 | 112.0 (3) | O12—C23—C24 | 120.0 (11) |
C21—O10—Pb3 | 94.7 (6) | O11—C23—C24 | 118.2 (10) |
C23—O11—Pb3 | 93.8 (6) | C23—C24—H24A | 109.5 |
C23—O12—Pb3 | 91.8 (6) | C23—C24—H24B | 109.5 |
C25—O13—Pb4 | 96.2 (6) | H24A—C24—H24B | 109.5 |
C25—O13—Pb3 | 133.3 (6) | C23—C24—H24C | 109.5 |
Pb4—O13—Pb3 | 117.5 (3) | H24A—C24—H24C | 109.5 |
C25—O14—Pb4 | 93.3 (6) | H24B—C24—H24C | 109.5 |
C25—O14—Pb4iii | 150.4 (6) | O14—C25—O13 | 119.5 (9) |
Pb4—O14—Pb4iii | 115.5 (3) | O14—C25—C26 | 121.0 (9) |
C27—O15—Pb4 | 86.8 (6) | O13—C25—C26 | 119.4 (9) |
C27—O16—Pb4 | 99.5 (6) | C25—C26—H26A | 109.5 |
C1—N1—Pb2 | 111.6 (6) | C25—C26—H26B | 109.5 |
C1—N1—H1A | 114 (6) | H26A—C26—H26B | 109.5 |
Pb2—N1—H1A | 98 (6) | C25—C26—H26C | 109.5 |
C1—N1—H1B | 114 (6) | H26A—C26—H26C | 109.5 |
Pb2—N1—H1B | 109 (6) | H26B—C26—H26C | 109.5 |
H1A—N1—H1B | 109 (4) | O15—C27—O16 | 123.2 (9) |
C6—N2—H2A | 127 (4) | O15—C27—C28 | 119.0 (10) |
C6—N2—H2B | 126 (4) | O16—C27—C28 | 117.8 (9) |
H2A—N2—H2B | 105 (4) | C27—C28—H28A | 109.5 |
C7—N3—Pb4 | 106.7 (6) | C27—C28—H28B | 109.5 |
C7—N3—H3A | 119 (6) | H28A—C28—H28B | 109.5 |
Pb4—N3—H3A | 101 (7) | C27—C28—H28C | 109.5 |
C7—N3—H3B | 109 (6) | H28A—C28—H28C | 109.5 |
Pb4—N3—H3B | 110 (7) | H28B—C28—H28C | 109.5 |
H3A—N3—H3B | 110 (5) |
Symmetry codes: (i) −x+2, −y+1, −z+1; (ii) x−1/2, −y+1/2, z−1/2; (iii) −x+2, −y, −z+1; (iv) x+1/2, −y+1/2, z+1/2. |
D—H···A | D—H | H···A | D···A | D—H···A |
N1—H1A···O2 | 0.89 (2) | 2.20 (3) | 3.061 (11) | 163 (7) |
N1—H1B···O11 | 0.88 (2) | 2.25 (4) | 3.079 (11) | 156 (8) |
N2—H2A···O11 | 0.90 (2) | 2.38 (5) | 3.238 (13) | 159 (11) |
N2—H2B···N4 | 0.90 (2) | 2.57 (5) | 3.229 (14) | 131 (5) |
N3—H3A···O12 | 0.87 (2) | 2.32 (4) | 3.151 (11) | 160 (8) |
N3—H3B···O16iii | 0.88 (2) | 2.33 (4) | 3.145 (11) | 154 (7) |
N4—H4B···O10 | 0.88 (2) | 2.38 (4) | 3.236 (12) | 163 (10) |
C2—H2···O2 | 0.95 | 2.52 | 3.309 (13) | 140 |
C12—H12···O16iii | 0.95 | 2.5 | 3.305 (13) | 142 |
C9—H9···O8v | 0.95 | 2.58 | 3.474 (13) | 156 |
C16—H16B···O12iv | 0.98 | 2.46 | 3.413 (13) | 165 |
C18—H18B···O15ii | 0.98 | 2.44 | 3.403 (14) | 167 |
Symmetry codes: (ii) x−1/2, −y+1/2, z−1/2; (iii) −x+2, −y, −z+1; (iv) x+1/2, −y+1/2, z+1/2; (v) x−1/2, −y+1/2, z+1/2. |
[Pb(C2H3O2)2(C6H7ClN2)] | Z = 2 |
Mr = 467.86 | F(000) = 436 |
Triclinic, P1 | Dx = 2.374 Mg m−3 |
a = 7.3623 (10) Å | Mo Kα radiation, λ = 0.71073 Å |
b = 7.6177 (10) Å | Cell parameters from 120 reflections |
c = 13.1413 (17) Å | θ = 3.6–25.7° |
α = 89.762 (4)° | µ = 13.10 mm−1 |
β = 76.405 (4)° | T = 200 K |
γ = 66.691 (4)° | Needle, clear orange |
V = 654.63 (15) Å3 | 0.30 × 0.10 × 0.10 mm |
Bruker SMART X2S benchtop diffractometer | 2572 independent reflections |
Radiation source: sealed microfocus tube | 2262 reflections with I > 2σ(I) |
Doubly curved silicon crystal monochromator | Rint = 0.057 |
ω scans | θmax = 26.4°, θmin = 2.9° |
Absorption correction: multi-scan (SADABS; Bruker, 2013) | h = −9→9 |
Tmin = 0.11, Tmax = 0.35 | k = −9→9 |
6572 measured reflections | l = −15→16 |
Refinement on F2 | Hydrogen site location: mixed |
Least-squares matrix: full | H atoms treated by a mixture of independent and constrained refinement |
R[F2 > 2σ(F2)] = 0.038 | w = 1/[σ2(Fo2) + (0.054P)2] where P = (Fo2 + 2Fc2)/3 |
wR(F2) = 0.100 | (Δ/σ)max = 0.001 |
S = 1.04 | Δρmax = 3.38 e Å−3 |
2572 reflections | Δρmin = −3.08 e Å−3 |
178 parameters | Extinction correction: SHELXL2014 (Sheldrick, 2008) |
6 restraints | Extinction coefficient: 0.0042 (8) |
[Pb(C2H3O2)2(C6H7ClN2)] | γ = 66.691 (4)° |
Mr = 467.86 | V = 654.63 (15) Å3 |
Triclinic, P1 | Z = 2 |
a = 7.3623 (10) Å | Mo Kα radiation |
b = 7.6177 (10) Å | µ = 13.10 mm−1 |
c = 13.1413 (17) Å | T = 200 K |
α = 89.762 (4)° | 0.30 × 0.10 × 0.10 mm |
β = 76.405 (4)° |
Bruker SMART X2S benchtop diffractometer | 2572 independent reflections |
Absorption correction: multi-scan (SADABS; Bruker, 2013) | 2262 reflections with I > 2σ(I) |
Tmin = 0.11, Tmax = 0.35 | Rint = 0.057 |
6572 measured reflections |
R[F2 > 2σ(F2)] = 0.038 | 6 restraints |
wR(F2) = 0.100 | H atoms treated by a mixture of independent and constrained refinement |
S = 1.04 | Δρmax = 3.38 e Å−3 |
2572 reflections | Δρmin = −3.08 e Å−3 |
178 parameters |
Geometry. All e.s.d.'s (except the e.s.d. in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell e.s.d.'s are taken into account individually in the estimation of e.s.d.'s in distances, angles and torsion angles; correlations between e.s.d.'s in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell e.s.d.'s is used for estimating e.s.d.'s involving l.s. planes. |
x | y | z | Uiso*/Ueq | ||
Pb1 | 0.67144 (4) | 0.16792 (4) | 0.53160 (2) | 0.01693 (17) | |
Cl1 | 0.2021 (4) | 0.3992 (4) | 1.0948 (2) | 0.0413 (7) | |
O1 | 0.8134 (9) | 0.2240 (10) | 0.3510 (5) | 0.0263 (15) | |
O2 | 0.4752 (10) | 0.3657 (10) | 0.3929 (6) | 0.0342 (17) | |
O3 | 0.6797 (9) | −0.1072 (9) | 0.4242 (5) | 0.0239 (15) | |
O4 | 0.9660 (9) | −0.1498 (9) | 0.4639 (5) | 0.0246 (15) | |
N1 | 0.7013 (12) | −0.0788 (11) | 0.6912 (6) | 0.0223 (17) | |
H1A | 0.652 (11) | −0.160 (9) | 0.675 (8) | 0.027* | |
H1B | 0.827 (6) | −0.145 (10) | 0.696 (8) | 0.027* | |
N2 | 0.8707 (15) | 0.0961 (18) | 0.8079 (9) | 0.057 (3) | |
H2A | 0.951 (13) | 0.031 (17) | 0.749 (5) | 0.068* | |
H2B | 0.933 (14) | 0.138 (18) | 0.844 (8) | 0.068* | |
C1 | 0.5832 (14) | 0.0307 (12) | 0.7902 (7) | 0.0204 (19) | |
C2 | 0.6734 (14) | 0.1165 (13) | 0.8450 (7) | 0.022 (2) | |
C3 | 0.5512 (14) | 0.2296 (14) | 0.9401 (8) | 0.027 (2) | |
H3 | 0.608 | 0.2878 | 0.9803 | 0.033* | |
C4 | 0.3504 (14) | 0.2563 (14) | 0.9749 (7) | 0.028 (2) | |
C5 | 0.2584 (14) | 0.1756 (15) | 0.9208 (8) | 0.030 (2) | |
H5 | 0.1189 | 0.196 | 0.946 | 0.036* | |
C6 | 0.3793 (15) | 0.0641 (14) | 0.8284 (8) | 0.028 (2) | |
H6 | 0.3202 | 0.0073 | 0.789 | 0.034* | |
C7 | 0.6442 (13) | 0.3293 (14) | 0.3291 (7) | 0.023 (2) | |
C8 | 0.6519 (17) | 0.4058 (15) | 0.2235 (8) | 0.036 (3) | |
H8A | 0.542 | 0.3983 | 0.1962 | 0.054* | |
H8B | 0.7843 | 0.3291 | 0.1748 | 0.054* | |
H8C | 0.6344 | 0.5399 | 0.2306 | 0.054* | |
C9 | 0.8652 (12) | −0.2138 (13) | 0.4197 (7) | 0.0166 (18) | |
C10 | 0.9620 (17) | −0.4105 (15) | 0.3656 (9) | 0.040 (3) | |
H10A | 0.9409 | −0.5006 | 0.4156 | 0.06* | |
H10B | 1.1089 | −0.4461 | 0.3375 | 0.06* | |
H10C | 0.9003 | −0.415 | 0.3077 | 0.06* |
U11 | U22 | U33 | U12 | U13 | U23 | |
Pb1 | 0.0120 (2) | 0.0172 (2) | 0.0188 (2) | −0.00311 (14) | −0.00369 (13) | −0.00168 (14) |
Cl1 | 0.0378 (15) | 0.0373 (15) | 0.0300 (14) | −0.0009 (12) | 0.0004 (11) | −0.0101 (12) |
O1 | 0.016 (3) | 0.037 (4) | 0.023 (3) | −0.006 (3) | −0.005 (3) | 0.003 (3) |
O2 | 0.019 (3) | 0.035 (4) | 0.043 (4) | −0.004 (3) | −0.010 (3) | 0.006 (3) |
O3 | 0.013 (3) | 0.023 (4) | 0.032 (4) | −0.004 (3) | −0.007 (3) | −0.003 (3) |
O4 | 0.017 (3) | 0.020 (3) | 0.037 (4) | −0.005 (3) | −0.012 (3) | −0.004 (3) |
N1 | 0.019 (4) | 0.022 (4) | 0.020 (4) | −0.003 (3) | −0.003 (3) | −0.002 (3) |
N2 | 0.030 (5) | 0.074 (8) | 0.059 (7) | −0.021 (5) | 0.005 (5) | −0.031 (6) |
C1 | 0.023 (5) | 0.015 (5) | 0.019 (5) | −0.004 (4) | −0.005 (4) | 0.005 (4) |
C2 | 0.027 (5) | 0.020 (5) | 0.024 (5) | −0.015 (4) | −0.004 (4) | 0.001 (4) |
C3 | 0.029 (5) | 0.023 (5) | 0.029 (5) | −0.009 (4) | −0.011 (4) | −0.001 (4) |
C4 | 0.027 (5) | 0.020 (5) | 0.017 (5) | 0.006 (4) | −0.001 (4) | −0.005 (4) |
C5 | 0.021 (5) | 0.035 (6) | 0.027 (5) | −0.008 (4) | −0.001 (4) | −0.004 (5) |
C6 | 0.030 (5) | 0.028 (5) | 0.032 (5) | −0.013 (4) | −0.015 (4) | 0.006 (4) |
C7 | 0.016 (4) | 0.022 (5) | 0.025 (5) | 0.000 (4) | −0.008 (4) | −0.008 (4) |
C8 | 0.046 (6) | 0.032 (6) | 0.041 (6) | −0.022 (5) | −0.022 (5) | 0.016 (5) |
C9 | 0.010 (4) | 0.021 (5) | 0.017 (4) | −0.008 (3) | 0.005 (3) | −0.004 (4) |
C10 | 0.036 (6) | 0.031 (6) | 0.047 (7) | −0.003 (5) | −0.016 (5) | −0.014 (6) |
Pb1—O1 | 2.467 (6) | N2—H2B | 0.87 (2) |
Pb1—O3 | 2.504 (6) | C1—C6 | 1.383 (13) |
Pb1—O4 | 2.512 (6) | C1—C2 | 1.400 (13) |
Pb1—O4i | 2.632 (6) | C2—C3 | 1.407 (13) |
Pb1—O2 | 2.678 (7) | C3—C4 | 1.372 (13) |
Pb1—O3ii | 2.734 (6) | C3—H3 | 0.95 |
Pb1—N1 | 2.800 (8) | C4—C5 | 1.379 (14) |
Cl1—C4 | 1.767 (9) | C5—C6 | 1.374 (13) |
O1—C7 | 1.286 (10) | C5—H5 | 0.95 |
O2—C7 | 1.252 (12) | C6—H6 | 0.95 |
O3—C9 | 1.270 (10) | C7—C8 | 1.500 (14) |
O3—Pb1ii | 2.734 (6) | C8—H8A | 0.98 |
O4—C9 | 1.272 (10) | C8—H8B | 0.98 |
O4—Pb1i | 2.632 (6) | C8—H8C | 0.98 |
N1—C1 | 1.430 (11) | C9—C10 | 1.478 (13) |
N1—H1A | 0.88 (2) | C10—H10A | 0.98 |
N1—H1B | 0.88 (2) | C10—H10B | 0.98 |
N2—C2 | 1.364 (13) | C10—H10C | 0.98 |
N2—H2A | 0.87 (2) | ||
O1—Pb1—O3 | 77.8 (2) | H2A—N2—H2B | 112 (5) |
O1—Pb1—O4 | 77.8 (2) | C6—C1—C2 | 119.8 (8) |
O3—Pb1—O4 | 51.77 (19) | C6—C1—N1 | 121.4 (8) |
O1—Pb1—O4i | 76.6 (2) | C2—C1—N1 | 118.7 (8) |
O3—Pb1—O4i | 114.49 (19) | N2—C2—C1 | 122.1 (9) |
O4—Pb1—O4i | 64.3 (2) | N2—C2—C3 | 120.4 (8) |
O1—Pb1—O2 | 50.8 (2) | C1—C2—C3 | 117.5 (8) |
O3—Pb1—O2 | 81.2 (2) | C4—C3—C2 | 120.2 (9) |
O4—Pb1—O2 | 117.4 (2) | C4—C3—H3 | 119.9 |
O4i—Pb1—O2 | 121.3 (2) | C2—C3—H3 | 119.9 |
O1—Pb1—O3ii | 119.4 (2) | C3—C4—C5 | 123.0 (9) |
O3—Pb1—O3ii | 64.1 (2) | C3—C4—Cl1 | 118.9 (8) |
O4—Pb1—O3ii | 107.7 (2) | C5—C4—Cl1 | 118.2 (8) |
O4i—Pb1—O3ii | 161.4 (2) | C6—C5—C4 | 116.4 (9) |
O2—Pb1—O3ii | 77.2 (2) | C6—C5—H5 | 121.8 |
O1—Pb1—N1 | 148.3 (2) | C4—C5—H5 | 121.8 |
O3—Pb1—N1 | 84.2 (2) | C5—C6—C1 | 123.1 (9) |
O4—Pb1—N1 | 70.5 (2) | C5—C6—H6 | 118.4 |
O4i—Pb1—N1 | 87.7 (2) | C1—C6—H6 | 118.4 |
O2—Pb1—N1 | 150.8 (2) | O2—C7—O1 | 121.5 (9) |
O3ii—Pb1—N1 | 73.7 (2) | O2—C7—C8 | 119.9 (8) |
C7—O1—Pb1 | 98.4 (6) | O1—C7—C8 | 118.6 (9) |
C7—O2—Pb1 | 89.4 (5) | C7—C8—H8A | 109.5 |
C9—O3—Pb1 | 94.8 (5) | C7—C8—H8B | 109.5 |
C9—O3—Pb1ii | 133.5 (6) | H8A—C8—H8B | 109.5 |
Pb1—O3—Pb1ii | 115.9 (2) | C7—C8—H8C | 109.5 |
C9—O4—Pb1 | 94.4 (5) | H8A—C8—H8C | 109.5 |
C9—O4—Pb1i | 146.7 (5) | H8B—C8—H8C | 109.5 |
Pb1—O4—Pb1i | 115.7 (2) | O3—C9—O4 | 119.0 (8) |
C1—N1—Pb1 | 109.3 (5) | O3—C9—C10 | 120.6 (8) |
C1—N1—H1A | 111 (6) | O4—C9—C10 | 120.3 (8) |
Pb1—N1—H1A | 105 (6) | C9—C10—H10A | 109.5 |
C1—N1—H1B | 108 (6) | C9—C10—H10B | 109.5 |
Pb1—N1—H1B | 114 (7) | H10A—C10—H10B | 109.5 |
H1A—N1—H1B | 108 (5) | C9—C10—H10C | 109.5 |
C2—N2—H2A | 124 (7) | H10A—C10—H10C | 109.5 |
C2—N2—H2B | 123 (7) | H10B—C10—H10C | 109.5 |
Symmetry codes: (i) −x+2, −y, −z+1; (ii) −x+1, −y, −z+1. |
D—H···A | D—H | H···A | D···A | D—H···A |
N1—H1A···O2ii | 0.88 (2) | 2.38 (3) | 3.261 (11) | 172 (9) |
N1—H1B···O1i | 0.88 (2) | 2.39 (5) | 3.201 (10) | 153 (8) |
N2—H2A···O1i | 0.87 (2) | 2.19 (6) | 2.998 (11) | 155 (13) |
Symmetry codes: (i) −x+2, −y, −z+1; (ii) −x+1, −y, −z+1. |
[Pb(C2H3O2)2(C7H7N3)] | Z = 2 |
Mr = 458.43 | F(000) = 428 |
Triclinic, P1 | Dx = 2.260 Mg m−3 |
a = 7.3724 (8) Å | Mo Kα radiation, λ = 0.71073 Å |
b = 7.6349 (8) Å | Cell parameters from 117 reflections |
c = 13.4069 (15) Å | θ = 3.4–27.1° |
α = 88.839 (3)° | µ = 12.54 mm−1 |
β = 78.330 (3)° | T = 200 K |
γ = 66.035 (3)° | Plate, clear colourless |
V = 673.71 (13) Å3 | 0.30 × 0.20 × 0.05 mm |
Bruker SMART X2S benchtop diffractometer | 2819 independent reflections |
Radiation source: sealed microfocus tube | 2498 reflections with I > 2σ(I) |
Doubly curved silicon crystal monochromator | Rint = 0.053 |
ω scans | θmax = 27.1°, θmin = 2.9° |
Absorption correction: multi-scan (SADABS; Bruker, 2013) | h = −9→9 |
Tmin = 0.12, Tmax = 0.57 | k = −9→9 |
8223 measured reflections | l = −17→17 |
Refinement on F2 | Secondary atom site location: difference Fourier map |
Least-squares matrix: full | Hydrogen site location: mixed |
R[F2 > 2σ(F2)] = 0.041 | H atoms treated by a mixture of independent and constrained refinement |
wR(F2) = 0.145 | w = 1/[σ2(Fo2) + (0.0965P)2] where P = (Fo2 + 2Fc2)/3 |
S = 1.14 | (Δ/σ)max < 0.001 |
2819 reflections | Δρmax = 3.41 e Å−3 |
187 parameters | Δρmin = −2.68 e Å−3 |
96 restraints | Extinction correction: SHELXL2014 (Sheldrick, 2008) |
Primary atom site location: structure-invariant direct methods | Extinction coefficient: 0.0029 (14) |
[Pb(C2H3O2)2(C7H7N3)] | γ = 66.035 (3)° |
Mr = 458.43 | V = 673.71 (13) Å3 |
Triclinic, P1 | Z = 2 |
a = 7.3724 (8) Å | Mo Kα radiation |
b = 7.6349 (8) Å | µ = 12.54 mm−1 |
c = 13.4069 (15) Å | T = 200 K |
α = 88.839 (3)° | 0.30 × 0.20 × 0.05 mm |
β = 78.330 (3)° |
Bruker SMART X2S benchtop diffractometer | 2819 independent reflections |
Absorption correction: multi-scan (SADABS; Bruker, 2013) | 2498 reflections with I > 2σ(I) |
Tmin = 0.12, Tmax = 0.57 | Rint = 0.053 |
8223 measured reflections |
R[F2 > 2σ(F2)] = 0.041 | 96 restraints |
wR(F2) = 0.145 | H atoms treated by a mixture of independent and constrained refinement |
S = 1.14 | Δρmax = 3.41 e Å−3 |
2819 reflections | Δρmin = −2.68 e Å−3 |
187 parameters |
Geometry. All e.s.d.'s (except the e.s.d. in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell e.s.d.'s are taken into account individually in the estimation of e.s.d.'s in distances, angles and torsion angles; correlations between e.s.d.'s in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell e.s.d.'s is used for estimating e.s.d.'s involving l.s. planes. |
x | y | z | Uiso*/Ueq | ||
Pb1 | 0.67380 (5) | 0.66477 (5) | 0.53022 (2) | 0.0203 (2) | |
N1 | 0.7227 (14) | 0.4007 (13) | 0.6920 (7) | 0.0275 (19) | |
H1A | 0.670 (16) | 0.320 (12) | 0.682 (11) | 0.041* | |
H1B | 0.845 (8) | 0.333 (14) | 0.702 (10) | 0.041* | |
N2 | 0.8921 (17) | 0.592 (2) | 0.8005 (10) | 0.059 (4) | |
H2A | 0.97 (2) | 0.54 (2) | 0.742 (7) | 0.088* | |
H2B | 0.94 (2) | 0.67 (2) | 0.823 (12) | 0.088* | |
C1 | 0.6114 (17) | 0.5081 (16) | 0.7846 (8) | 0.027 (2) | |
C2 | 0.6936 (17) | 0.6094 (15) | 0.8374 (8) | 0.028 (2) | |
C3 | 0.5729 (17) | 0.7188 (17) | 0.9252 (9) | 0.036 (3) | |
H3 | 0.6284 | 0.7802 | 0.9635 | 0.043* | |
C4 | 0.3739 (18) | 0.7430 (18) | 0.9601 (9) | 0.035 (2) | |
C5 | 0.2911 (18) | 0.6475 (18) | 0.9083 (9) | 0.038 (3) | |
H5 | 0.156 | 0.6596 | 0.9329 | 0.046* | |
C6 | 0.4078 (17) | 0.5367 (16) | 0.8218 (9) | 0.032 (2) | |
H6 | 0.3496 | 0.476 | 0.7848 | 0.038* | |
C7 | 0.251 (2) | 0.870 (2) | 1.0495 (9) | 0.044 (3) | |
N3 | 0.1570 (19) | 0.9743 (18) | 1.1197 (10) | 0.057 (3) | |
O1 | 0.6745 (10) | 0.3933 (10) | 0.4281 (6) | 0.0253 (15) | |
O2 | 0.9632 (11) | 0.3531 (12) | 0.4658 (6) | 0.0303 (17) | |
C8 | 0.8580 (15) | 0.2890 (15) | 0.4258 (8) | 0.0216 (19) | |
C9 | 0.9546 (18) | 0.0876 (19) | 0.3768 (11) | 0.041 (3) | |
H9A | 1.1009 | 0.0496 | 0.3529 | 0.062* | |
H9B | 0.8942 | 0.0826 | 0.3188 | 0.062* | |
H9C | 0.9315 | −0.0005 | 0.4269 | 0.062* | |
O3 | 0.8051 (11) | 0.7257 (11) | 0.3578 (6) | 0.0280 (16) | |
O4 | 0.4720 (12) | 0.8727 (14) | 0.3943 (7) | 0.042 (2) | |
C10 | 0.6369 (18) | 0.8350 (18) | 0.3345 (9) | 0.032 (2) | |
C11 | 0.642 (2) | 0.916 (2) | 0.2316 (10) | 0.047 (3) | |
H11A | 0.6577 | 1.0367 | 0.2353 | 0.07* | |
H11B | 0.5144 | 0.9398 | 0.2104 | 0.07* | |
H11C | 0.756 | 0.8238 | 0.1818 | 0.07* |
U11 | U22 | U33 | U12 | U13 | U23 | |
Pb1 | 0.0163 (3) | 0.0203 (3) | 0.0214 (3) | −0.00385 (19) | −0.00553 (16) | −0.00232 (16) |
N1 | 0.028 (4) | 0.015 (4) | 0.030 (4) | −0.001 (4) | −0.002 (3) | −0.004 (3) |
N2 | 0.040 (5) | 0.073 (9) | 0.057 (7) | −0.024 (5) | 0.005 (5) | −0.034 (6) |
C1 | 0.030 (4) | 0.021 (5) | 0.022 (4) | −0.003 (4) | −0.004 (3) | 0.001 (3) |
C2 | 0.032 (4) | 0.020 (5) | 0.027 (4) | −0.002 (4) | −0.012 (3) | 0.004 (3) |
C3 | 0.036 (5) | 0.033 (6) | 0.033 (5) | −0.006 (4) | −0.009 (4) | −0.004 (4) |
C4 | 0.034 (5) | 0.029 (6) | 0.028 (5) | −0.001 (4) | −0.006 (4) | 0.001 (4) |
C5 | 0.033 (5) | 0.041 (6) | 0.029 (5) | −0.006 (5) | −0.001 (4) | −0.003 (4) |
C6 | 0.033 (4) | 0.023 (5) | 0.032 (5) | −0.007 (4) | −0.001 (3) | −0.003 (4) |
C7 | 0.044 (7) | 0.051 (9) | 0.029 (6) | −0.013 (7) | −0.002 (5) | −0.011 (6) |
N3 | 0.062 (8) | 0.050 (8) | 0.047 (7) | −0.014 (7) | −0.002 (6) | −0.016 (6) |
O1 | 0.017 (3) | 0.013 (3) | 0.042 (4) | 0.000 (3) | −0.013 (3) | 0.002 (3) |
O2 | 0.017 (3) | 0.034 (5) | 0.036 (4) | −0.006 (3) | −0.006 (3) | −0.011 (3) |
C8 | 0.021 (4) | 0.020 (4) | 0.022 (4) | −0.006 (3) | −0.007 (3) | 0.005 (3) |
C9 | 0.027 (5) | 0.028 (5) | 0.063 (8) | −0.002 (4) | −0.014 (5) | −0.019 (5) |
O3 | 0.023 (3) | 0.028 (4) | 0.031 (4) | −0.008 (3) | −0.007 (3) | 0.002 (3) |
O4 | 0.023 (3) | 0.048 (6) | 0.043 (4) | −0.001 (4) | −0.012 (3) | 0.011 (4) |
C10 | 0.029 (4) | 0.036 (6) | 0.033 (5) | −0.014 (4) | −0.012 (3) | −0.004 (4) |
C11 | 0.060 (8) | 0.042 (8) | 0.043 (5) | −0.021 (6) | −0.022 (5) | 0.011 (5) |
Pb1—O3 | 2.431 (7) | C4—C7 | 1.449 (17) |
Pb1—O2 | 2.485 (8) | C5—C6 | 1.358 (15) |
Pb1—O1 | 2.505 (7) | C5—H5 | 0.95 |
Pb1—O2i | 2.635 (7) | C6—H6 | 0.95 |
Pb1—O4 | 2.667 (8) | C7—N3 | 1.146 (16) |
Pb1—O1ii | 2.727 (7) | O1—C8 | 1.255 (12) |
Pb1—N1 | 2.906 (10) | O1—Pb1ii | 2.727 (7) |
N1—C1 | 1.403 (13) | O2—C8 | 1.271 (12) |
N1—H1A | 0.88 (2) | O2—Pb1i | 2.635 (7) |
N1—H1B | 0.87 (2) | C8—C9 | 1.505 (15) |
N2—C2 | 1.398 (15) | C9—H9A | 0.98 |
N2—H2A | 0.88 (2) | C9—H9B | 0.98 |
N2—H2B | 0.88 (2) | C9—H9C | 0.98 |
C1—C6 | 1.409 (15) | O3—C10 | 1.279 (13) |
C1—C2 | 1.430 (15) | O4—C10 | 1.239 (14) |
C2—C3 | 1.373 (15) | C10—C11 | 1.500 (18) |
C3—C4 | 1.382 (17) | C11—H11A | 0.98 |
C3—H3 | 0.95 | C11—H11B | 0.98 |
C4—C5 | 1.393 (17) | C11—H11C | 0.98 |
O3—Pb1—O2 | 77.0 (3) | C4—C3—H3 | 118.7 |
O3—Pb1—O1 | 78.6 (3) | C3—C4—C5 | 120.0 (11) |
O2—Pb1—O1 | 52.0 (2) | C3—C4—C7 | 119.9 (12) |
O3—Pb1—O2i | 75.3 (2) | C5—C4—C7 | 120.0 (11) |
O2—Pb1—O2i | 64.3 (3) | C6—C5—C4 | 118.5 (11) |
O1—Pb1—O2i | 114.8 (2) | C6—C5—H5 | 120.7 |
O3—Pb1—O4 | 50.8 (2) | C4—C5—H5 | 120.7 |
O2—Pb1—O4 | 117.2 (3) | C5—C6—C1 | 122.9 (11) |
O1—Pb1—O4 | 82.3 (3) | C5—C6—H6 | 118.6 |
O2i—Pb1—O4 | 119.7 (3) | C1—C6—H6 | 118.6 |
O3—Pb1—O1ii | 119.9 (2) | N3—C7—C4 | 177.7 (16) |
O2—Pb1—O1ii | 108.4 (2) | C8—O1—Pb1 | 93.8 (6) |
O1—Pb1—O1ii | 63.9 (3) | C8—O1—Pb1ii | 134.3 (6) |
O2i—Pb1—O1ii | 162.4 (3) | Pb1—O1—Pb1ii | 116.1 (3) |
O4—Pb1—O1ii | 77.9 (3) | C8—O2—Pb1 | 94.3 (6) |
O3—Pb1—N1 | 147.4 (2) | C8—O2—Pb1i | 147.4 (7) |
O2—Pb1—N1 | 70.6 (3) | Pb1—O2—Pb1i | 115.7 (3) |
O1—Pb1—N1 | 83.9 (3) | O1—C8—O2 | 119.8 (9) |
O2i—Pb1—N1 | 87.6 (3) | O1—C8—C9 | 120.6 (9) |
O4—Pb1—N1 | 152.5 (3) | O2—C8—C9 | 119.6 (9) |
O1ii—Pb1—N1 | 74.7 (2) | C8—C9—H9A | 109.5 |
C1—N1—Pb1 | 107.9 (6) | C8—C9—H9B | 109.5 |
C1—N1—H1A | 108 (9) | H9A—C9—H9B | 109.5 |
Pb1—N1—H1A | 109 (9) | C8—C9—H9C | 109.5 |
C1—N1—H1B | 106 (9) | H9A—C9—H9C | 109.5 |
Pb1—N1—H1B | 119 (9) | H9B—C9—H9C | 109.5 |
H1A—N1—H1B | 107 (5) | C10—O3—Pb1 | 98.9 (7) |
C2—N2—H2A | 128 (10) | C10—O4—Pb1 | 88.8 (7) |
C2—N2—H2B | 123 (10) | O4—C10—O3 | 121.5 (11) |
H2A—N2—H2B | 106 (5) | O4—C10—C11 | 119.8 (11) |
N1—C1—C6 | 120.8 (10) | O3—C10—C11 | 118.6 (11) |
N1—C1—C2 | 120.7 (10) | C10—C11—H11A | 109.5 |
C6—C1—C2 | 118.1 (10) | C10—C11—H11B | 109.5 |
C3—C2—N2 | 122.3 (11) | H11A—C11—H11B | 109.5 |
C3—C2—C1 | 117.7 (10) | C10—C11—H11C | 109.5 |
N2—C2—C1 | 120.0 (10) | H11A—C11—H11C | 109.5 |
C2—C3—C4 | 122.7 (11) | H11B—C11—H11C | 109.5 |
C2—C3—H3 | 118.7 | ||
Pb1—N1—C1—C6 | 91.4 (11) | C2—C1—C6—C5 | −3.7 (18) |
Pb1—N1—C1—C2 | −81.2 (10) | Pb1—O1—C8—O2 | −3.0 (10) |
N1—C1—C2—C3 | 177.1 (10) | Pb1ii—O1—C8—O2 | −135.8 (8) |
C6—C1—C2—C3 | 4.2 (16) | Pb1—O1—C8—C9 | 176.5 (10) |
N1—C1—C2—N2 | −4.3 (17) | Pb1ii—O1—C8—C9 | 43.6 (15) |
C6—C1—C2—N2 | −177.1 (12) | Pb1—O2—C8—O1 | 3.0 (10) |
N2—C2—C3—C4 | 177.4 (13) | Pb1i—O2—C8—O1 | −154.9 (9) |
C1—C2—C3—C4 | −4.0 (18) | Pb1—O2—C8—C9 | −176.4 (10) |
C2—C3—C4—C5 | 3.0 (19) | Pb1i—O2—C8—C9 | 26 (2) |
C2—C3—C4—C7 | −175.9 (12) | Pb1—O4—C10—O3 | 2.1 (11) |
C3—C4—C5—C6 | −2.2 (19) | Pb1—O4—C10—C11 | −178.9 (11) |
C7—C4—C5—C6 | 176.7 (12) | Pb1—O3—C10—O4 | −2.3 (13) |
C4—C5—C6—C1 | 2.7 (19) | Pb1—O3—C10—C11 | 178.7 (10) |
N1—C1—C6—C5 | −176.6 (11) |
Symmetry codes: (i) −x+2, −y+1, −z+1; (ii) −x+1, −y+1, −z+1. |
D—H···A | D—H | H···A | D···A | D—H···A |
N1—H1A···O4ii | 0.88 (2) | 2.46 (4) | 3.310 (14) | 164 (12) |
N1—H1B···O3i | 0.87 (2) | 2.40 (8) | 3.139 (12) | 143 (11) |
N2—H2A···O3i | 0.88 (2) | 2.25 (9) | 3.044 (14) | 150 (16) |
N2—H2B···N3iii | 0.88 (2) | 2.62 (11) | 3.355 (18) | 142 (14) |
Symmetry codes: (i) −x+2, −y+1, −z+1; (ii) −x+1, −y+1, −z+1; (iii) −x+1, −y+2, −z+2. |
Pb1—O2 | 2.380 (6) | Pb3—O12 | 2.509 (7) |
Pb1—O3 | 2.474 (7) | Pb3—O10 | 2.590 (6) |
Pb1—O4 | 2.576 (7) | Pb3—O9 | 2.604 (7) |
Pb1—O1 | 2.636 (7) | Pb3—O7ii | 2.675 (7) |
Pb1—O5 | 2.667 (6) | Pb3—O13 | 2.688 (6) |
Pb1—O3i | 2.792 (7) | Pb3—O6 | 2.696 (7) |
Pb2—O8 | 2.448 (8) | Pb4—O16 | 2.427 (7) |
Pb2—O6 | 2.470 (7) | Pb4—O13 | 2.482 (7) |
Pb2—O5 | 2.485 (6) | Pb4—O14 | 2.563 (7) |
Pb2—O9 | 2.654 (7) | Pb4—O14iii | 2.609 (7) |
Pb2—O4 | 2.696 (6) | Pb4—O15 | 2.713 (7) |
Pb2—O7 | 2.747 (8) | Pb4—O10 | 2.901 (6) |
Pb2—N1 | 2.797 (9) | Pb4—N3 | 2.862 (10) |
Pb3—O11 | 2.443 (7) |
Symmetry codes: (i) −x+2, −y+1, −z+1; (ii) x−1/2, −y+1/2, z−1/2; (iii) −x+2, −y, −z+1. |
Pb1—O1 | 2.467 (6) | Pb1—O2 | 2.678 (7) |
Pb1—O3 | 2.504 (6) | Pb1—O3ii | 2.734 (6) |
Pb1—O4 | 2.512 (6) | Pb1—N1 | 2.800 (8) |
Pb1—O4i | 2.632 (6) |
Symmetry codes: (i) −x+2, −y, −z+1; (ii) −x+1, −y, −z+1. |
Pb1—O3 | 2.431 (7) | Pb1—O4 | 2.667 (8) |
Pb1—O2 | 2.485 (8) | Pb1—O1ii | 2.727 (7) |
Pb1—O1 | 2.505 (7) | Pb1—N1 | 2.906 (10) |
Pb1—O2i | 2.635 (7) |
Symmetry codes: (i) −x+2, −y+1, −z+1; (ii) −x+1, −y+1, −z+1. |
D—H···A | D—H | H···A | D···A | D—H···A |
N1—H1A···O2 | 0.89 (2) | 2.20 (3) | 3.061 (11) | 163.(7) |
N1—H1B···O11 | 0.88 (2) | 2.25 (4) | 3.079 (11) | 156.(8) |
N2—H2A···O11 | 0.899 (19) | 2.38 (5) | 3.238 (13) | 159.(11) |
N2—H2B···N4 | 0.898 (19) | 2.57 (5) | 3.229 (14) | 131.(5) |
N3—H3A···O12 | 0.87 (2) | 2.32 (4) | 3.151 (11) | 160.(8) |
N3—H3B···O16iii | 0.88 (2) | 2.33 (4) | 3.145 (11) | 154.(7) |
N4—H4B···O10 | 0.88 (2) | 2.38 (4) | 3.236 (12) | 163.(10) |
Symmetry code: (iii) −x+2, −y, −z+1. |
D—H···A | D—H | H···A | D···A | D—H···A |
N1—H1A···O2ii | 0.88 (2) | 2.38 (3) | 3.261 (11) | 172.(9) |
N1—H1B···O1i | 0.88 (2) | 2.39 (5) | 3.201 (10) | 153.(8) |
N2—H2A···O1i | 0.87 (2) | 2.19 (6) | 2.998 (11) | 155.(13) |
Symmetry codes: (i) −x+2, −y, −z+1; (ii) −x+1, −y, −z+1. |
D—H···A | D—H | H···A | D···A | D—H···A |
N1—H1A···O4ii | 0.88 (2) | 2.46 (4) | 3.310 (14) | 164.(12) |
N1—H1B···O3i | 0.87 (2) | 2.40 (8) | 3.139 (12) | 143.(11) |
N2—H2A···O3i | 0.88 (2) | 2.25 (9) | 3.044 (14) | 150.(16) |
N2—H2B···N3iii | 0.88 (2) | 2.62 (11) | 3.355 (18) | 142.(14) |
Symmetry codes: (i) −x+2, −y+1, −z+1; (ii) −x+1, −y+1, −z+1; (iii) −x+1, −y+2, −z+2. |
Experimental details
(I) | (II) | (III) | |
Crystal data | |||
Chemical formula | [Pb4(C2H3O2)8(C6H8N2)2] | [Pb(C2H3O2)2(C6H7ClN2)] | [Pb(C2H3O2)2(C7H7N3)] |
Mr | 1517.40 | 467.86 | 458.43 |
Crystal system, space group | Monoclinic, P21/n | Triclinic, P1 | Triclinic, P1 |
Temperature (K) | 200 | 200 | 200 |
a, b, c (Å) | 11.1447 (14), 29.694 (4), 11.8597 (14) | 7.3623 (10), 7.6177 (10), 13.1413 (17) | 7.3724 (8), 7.6349 (8), 13.4069 (15) |
α, β, γ (°) | 90, 103.941 (4), 90 | 89.762 (4), 76.405 (4), 66.691 (4) | 88.839 (3), 78.330 (3), 66.035 (3) |
V (Å3) | 3809.1 (8) | 654.63 (15) | 673.71 (13) |
Z | 4 | 2 | 2 |
Radiation type | Mo Kα | Mo Kα | Mo Kα |
µ (mm−1) | 17.70 | 13.10 | 12.54 |
Crystal size (mm) | 0.50 × 0.30 × 0.10 | 0.30 × 0.10 × 0.10 | 0.30 × 0.20 × 0.05 |
Data collection | |||
Diffractometer | Bruker SMART X2S benchtop | Bruker SMART X2S benchtop | Bruker SMART X2S benchtop |
Absorption correction | Multi-scan (SADABS; Bruker, 2013) | Multi-scan (SADABS; Bruker, 2013) | Multi-scan (SADABS; Bruker, 2013) |
Tmin, Tmax | 0.12, 0.27 | 0.11, 0.35 | 0.12, 0.57 |
No. of measured, independent and observed [I > 2σ(I)] reflections | 26670, 7708, 5239 | 6572, 2572, 2262 | 8223, 2819, 2498 |
Rint | 0.080 | 0.057 | 0.053 |
(sin θ/λ)max (Å−1) | 0.624 | 0.625 | 0.641 |
Refinement | |||
R[F2 > 2σ(F2)], wR(F2), S | 0.042, 0.093, 0.96 | 0.038, 0.100, 1.04 | 0.041, 0.145, 1.14 |
No. of reflections | 7708 | 2572 | 2819 |
No. of parameters | 502 | 178 | 187 |
No. of restraints | 122 | 6 | 96 |
H-atom treatment | H atoms treated by a mixture of independent and constrained refinement | H atoms treated by a mixture of independent and constrained refinement | H atoms treated by a mixture of independent and constrained refinement |
Δρmax, Δρmin (e Å−3) | 2.12, −1.97 | 3.38, −3.08 | 3.41, −2.68 |
Computer programs: APEX2 (Bruker, 2013), SAINT (Bruker, 2013), SHELXS97 (Sheldrick, 2008), SHELXL2014 (Sheldrick, 2008), PLATON (Spek, 2009), Mercury (Macrae et al., 2006) and ORTEP-3 for Windows (Farrugia, 2012), publCIF (Westrip, 2010).
Acknowledgements
This work was supported by a Congressionally directed grant from the US Department of Education (grant No. P116Z100020) for the X-ray diffractometer and a grant from the Geneseo Foundation.
References
Bruker (2013). APEX2, SAINT and SADABS. Bruker AXS Inc., Madison, Wisconsin, USA. Google Scholar
Dai, J., Yang, J. & An, X. (2009). Acta Cryst. E65, m709–m710. Web of Science CSD CrossRef IUCr Journals Google Scholar
Devereux, M., van Severen, M.-C., Parisel, O., Piquemal, J.-P. & Gresh, N. (2011). J. Chem. Theory Comput. 7, 138–147. Web of Science CrossRef CAS Google Scholar
Dey, C., Kundu, T., Biswal, B. P., Mallick, A. & Banerjee, R. (2014). Acta Cryst. B70, 3–10. Web of Science CrossRef CAS IUCr Journals Google Scholar
Esteban-Gómez, D., Platas-Iglesias, C., Enriquez-Pérez, T. & Avecilla, F. (2006). Inorg. Chem. 45, 5407–5416. PubMed Google Scholar
Farha, O. K. & Hupp, J. T. (2010). Acc. Chem. Res. 43, 1166–1175. Web of Science CrossRef CAS PubMed Google Scholar
Farrugia, L. J. (2012). J. Appl. Cryst. 45, 849–854. Web of Science CrossRef CAS IUCr Journals Google Scholar
Foreman, M. R. S. J., Plater, M. J. & Skakle, J. M. S. (2001). J. Chem. Soc. Dalton Trans. pp. 1897–1903. Web of Science CSD CrossRef Google Scholar
Geiger, D. K. & Parsons, D. E. (2014). Acta Cryst. E70, m247–m248. CSD CrossRef IUCr Journals Google Scholar
Imran, M., Mix, A., Neumann, B., Stammler, H.-G., Monkowius, U., Gründlinger, P. & Mitzel, N. W. (2014). Dalton Trans. doi: 10.1039/c4dt01406e Google Scholar
Kreno, L. E., Leong, K., Farha, O. K., Allendorf, M., Van Duyne, R. P. & Hupp, J. T. (2012). Chem. Rev. 112, 1105–1125. Web of Science CrossRef CAS PubMed Google Scholar
Lyczko, K. & Bak, J. (2008). Acta Cryst. E64, m1341–m1342. Web of Science CSD CrossRef IUCr Journals Google Scholar
Macrae, C. F., Edgington, P. R., McCabe, P., Pidcock, E., Shields, G. P., Taylor, R., Towler, M. & van de Streek, J. (2006). J. Appl. Cryst. 39, 453–457. Web of Science CSD CrossRef CAS IUCr Journals Google Scholar
Mohammadnezhad, G., Ghanbarpour, A. R., Amini, M. M. & Ng, S. W. (2010). Acta Cryst. E66, m963. Web of Science CSD CrossRef IUCr Journals Google Scholar
Morsali, A. (2004). Z. Naturforsch. Teil B, 59, 1039–1044. CAS Google Scholar
Morsali, A., Mahjoub, A. R., Soltanian, M. J. & Pour, P. E. (2005). Z. Naturforsch. Teil B, 60, 300–304. CAS Google Scholar
Park, H. & Barbier, J. (2001). Acta Cryst. E57, i82–i84. Web of Science CrossRef IUCr Journals Google Scholar
Sheldrick, G. M. (2008). Acta Cryst. A64, 112–122. Web of Science CrossRef CAS IUCr Journals Google Scholar
Shimoni-Livny, L., Glusker, J. P. & Bock, C. W. (1998). Inorg. Chem. 37, 1853–1867. Web of Science CrossRef CAS Google Scholar
Spek, A. L. (2009). Acta Cryst. D65, 148–155. Web of Science CrossRef CAS IUCr Journals Google Scholar
Wang, X. & Liebau, F. (2007). Acta Cryst. B63, 216–228. Web of Science CrossRef CAS IUCr Journals Google Scholar
Westrip, S. P. (2010). J. Appl. Cryst. 43, 920–925. Web of Science CrossRef CAS IUCr Journals Google Scholar
Yilmaz, V. T., Hamamci, S., Andac, O. & Guven, K. (2003). Z. Anorg. Allg. Chem. 629, 172–176. Web of Science CSD CrossRef CAS Google Scholar
This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.