organic compounds
Three isomeric (E)-nitrobenzaldehyde nitrophenylhydrazones: chains of rings in isomorphous (E)-2-nitrobenzaldehyde 3-nitrophenylhydrazone and (E)-3-nitrobenzaldehyde 2-nitrophenylhydrazone, and centrosymmetric dimers in (E)-4-nitrobenzaldehyde 2-nitrophenylhydrazone
aSchool of Chemistry, University of St Andrews, Fife KY16 9ST, Scotland, bDepartment of Chemistry, University of Aberdeen, Meston Walk, Old Aberdeen AB24 3UE, Scotland, and cInstituto de Química, Departamento de Química Inorgânica, Universidade Federal do Rio de Janeiro, 21945-970 Rio de Janeiro, RJ, Brazil
*Correspondence e-mail: cg@st-andrews.ac.uk
The isomeric compounds (E)-2-nitrobenzaldehyde 3-nitrophenylhydrazone and (E)-3-nitrobenzaldehyde 2-nitrophenylhydrazone, both C13H10N4O4, are isomorphous and effectively isostructural, and in both, the molecules are disordered across centres of inversion in the P21/c. The molecules are linked into complex chains of rings by N—H⋯O and C—H⋯O hydrogen bonds. In the isomeric compound (E)-4-nitrobenzaldehyde 2-nitrophenylhydrazone, the fully ordered molecules are linked by N—H⋯O hydrogen bonds into centrosymmetric dimers.
Comment
As part of our continuing studies of the supramolecular arrangements in –(III), which we compare briefly with two further isomers, (IV) and (V) (see scheme) (Shan et al., 2004; Wardell et al., 2005).
and we report here the structures of three isomeric nitrobenzaldehyde nitrophenyl (I)In isomers (I) and (II) (Figs. 1 and 2), the molecules are disordered over two sets of sites related by a centre of inversion, selected for the sake of convenience as that at (, , ). The asymmetric units for (I) and (II) were selected so that the coordinates of the atoms in the nitro groups were approximately the same. This then led to close correspondence between the coordinates for atoms C11–C16 in (I) with those for atoms C16/C11–C15, respectively, in (II). Likewise, the coordinates for atoms N1, N2 and C27 in the reference at (x, y, z) in (I) closely correspond to those in (II) for atoms C27, N2 and N1, respectively, at (1 − x, 1 − y, 1 − z). The unit-cell dimensions indicate that (I) and (II) are isomorphous, and the atom coordinates indicate that these compounds are effectively isostructural, but with atoms N1 and C27 interchanged between (I) and (II) (Figs. 1 and 2). By contrast, all atoms in isomer (III) (Fig. 3) are fully ordered in general positions. While all of the atoms in isomer (IV) are fully ordered, in isomer (V) the NH and CH sites in the central bridge are randomly scrambled, with the two heavy-atom sites each occupied by (0.5C + 0.5N) (Wardell et al., 2005).
In each of isomers (I)–(III), the molecules are essentially planar, and all have the E configuration at the C=N double bond. In (III), the bond distances (Table 3) show strong evidence for the development of the polarized quinonoid form, (IIIa). In particular, with the C11–C16 aryl ring, the C13—C14 and C15—C16 distances are significantly shorter than the remaining distances, the C11—C12 distance is the longest and the C12—N12 distance is short for its type, while the N12—O21 and N12—O22 distances are both long (Allen et al., 1987). By contrast, the C21–C26 aryl ring shows no evidence for the development of a quinonoid form. The structure of the isomer (IV), which differs from (III) by the notional reversal of the spacer fragment, has been determined both at 295 K (Shan et al., 2004) and at 120 K (Wardell et al., 2005). The same phase is present at both temperatures and both structures show evidence for the development of the polarized form, (IVa), although this was not remarked upon by Shan et al. (2004).
In each of (I) and (II), there is a short intramolecular X—H⋯O contact (Tables 1 and 2), where X is atom C27 in (I) and atom N1 in (II). We first discuss the intermolecular hydrogen bonds on the assumption of local ordering and then consider the consequences of the disorder across inversion centres. In (I), the molecules are linked by the concerted action of three hydrogen bonds (Table 1): atoms N1 and C27 in the molecule at (x, y, z) both act as hydrogen-bond donors to atom O31 in the molecule at (1 + x, −1 + y, z), while atom C16 at (x, y, z) similarly acts as donor to atom O32, also at (1 + x, −1 + y, z). Hence, this multi-point interaction generates by translation a complex chain of rings running parallel to the [10] direction (Fig. 1). An entirely similar chain of rings is formed in compound (II), where atoms N1 and C27 at (x, y, z) act as donors to atom O21 at (−x, 2 − y, 1 − z), while atom C15 acts as donor to atom O22 at (1 + x, −1 + y, z) (Fig. 2). In each isomer, therefore, a given molecule will form four hydrogen bonds with each of its neighbours within the [10] chain, provided only that there is local ordering within the chain in question. The multi-point recognition makes it appear probable that, within a given chain, the molecules are, in fact, ordered in this manner. Two chains of this type pass through each in (I) and (II), but there are no direction-specific interactions between adjacent chains. Accordingly, there is no necessity for the orientation of molecules in adjacent chains to show any correlation.
The supramolecular structure of (III), by contrast, is extremely simple. In addition to forming an intramolecular hydrogen bond (Table 4) which gives rise to an S(6) ring, amino atom N1 in the molecule at (x, y, z) acts as hydrogen-bond donor to nitro atom O21 in the molecule at (1 − x, 1 − y, 1 − z), so forming a centrosymmetric dimer containing an S(6)R22(4)S(6) motif (Fig. 4). There are no direction-specific interactions between adjacent dimers. In particular, C—H⋯π(arene) hydrogen bonds and aromatic π–π stacking interactions are both absent. The supramolecular structure of (III) thus consists of isolated dimers.
In isomer (IV), the close analogue of (III), the molecules are linked into complex sheets by a combination of one N—H⋯O hydrogen bond and three independent C—H⋯O hydrogen bonds (Wardell et al., 2005). In the earlier report on this compound (Shan et al., 2004), the C—H⋯O hydrogen bonds were all overlooked; instead, those authors suggested the occurrence of π–π stacking interactions, but such interactions are, in fact, absent (Wardell et al., 2005). In the disordered isomer, (V), an extensive series of N—H⋯O and C—H⋯O hydrogen bonds generates a three-dimensional framework structure, the formation of which is independent of the disorder (Wardell et al., 2005).
Experimental
Isomer (I) was obtained by the reaction of equimolar quantities (2 mmol) of 2-nitrobenzaldehyde and 3-nitrophenylhydrazine hydrochloride in MeOH (20 ml). The reaction mixture was heated under reflux for 30 min and, after cooling, the solvent was removed under reduced pressure. The solid residue was recrystallized from methanol–1,2-dichloroethane (1:1 v/v). IR: 3295, 1616, 1573, 1566 cm−1. Isomers (II) and (III) were obtained from the reactions of equimolar quantities (2 mmol) of 2-nitrophenylhydrazine and the appropriate nitrobenzaldehyde in MeOH (20 ml). The reaction mixtures were heated under reflux for 30 min and, after cooling, the solvents were removed under reduced pressure. Compounds (II) and (III) were obtained on recrystallization of the appropriate reaction residue from ethyl acetate. IR: for (II), 3299, 1615, 1573, 1545 cm−1; for (III), 3286, 1619, 1595, 1569 cm−1. Crystals of (II) were very fragile, and attempts to cut small fragments from larger crystals consistently resulted in shattering.
Isomer (I)
Crystal data
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Refinement
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Isomer (II)
Crystal data
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Refinement
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Isomer (III)
Crystal data
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Refinement
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For each compound, the P21/c was uniquely assigned from the All H atoms were located in difference maps and subsequently treated as riding atoms, with distances C—H = 0.95 Å and N—H = 0.88 Å, and with Uiso(H) = 1.2Ueq(C,N). It became apparent at an early stage that in each of (I) and (II) the molecules were disordered over two sets of sites related by a centre of inversion, selected in each case as that at (, , ). Each isomer was then modelled using a single aryl ring with a single nitro substituent, all having unit occupancy, and an acyclic fragment –CH=N—NH– having 0.5 occupancy. The atom-labelling schemes (Figs. 1 and 2) were such that atom N1 was bonded to atom C11, and the aryl ring was numbered to provide the lowest locant for the nitro group. The H-atom sites bonded to atoms C11 and C12 also have 0.5 occupancy.
For the three title isomers, data collection: COLLECT (Nonius, 1999); cell DENZO (Otwinowski & Minor, 1997) and COLLECT; data reduction: DENZO and COLLECT; program(s) used to solve structure: OSCAIL (McArdle, 2003) and SHELXS97 (Sheldrick, 1997); program(s) used to refine structure: OSCAIL and SHELXL97 (Sheldrick, 1997); molecular graphics: PLATON (Spek, 2003); software used to prepare material for publication: SHELXL97 and PRPKAPPA (Ferguson, 1999).
Supporting information
10.1107/S0108270105028799/sk1867sup1.cif
contains datablocks global, I, II, III. DOI:Structure factors: contains datablock I. DOI: 10.1107/S0108270105028799/sk1867Isup2.hkl
Structure factors: contains datablock II. DOI: 10.1107/S0108270105028799/sk1867IIsup3.hkl
Structure factors: contains datablock III. DOI: 10.1107/S0108270105028799/sk1867IIIsup4.hkl
Compound (I) was obtained by the reaction of equimolar quantities (2 mmol) of 2-nitrobenzaldehyde and 3-nitrophenylhydrazine hydrochloride in MeOH (20 ml). The reaction mixture was heated under reflux for 30 min and, after cooling the mixture, the solvent was removed under reduced pressure. The solid residue was recrystallized from methanol–1,2-dichloroethane (1:1 v/v). Analysis, IR: 3295, 1616, 1573, 1566 cm−1. Compounds (II) and (III) were obtained from the reactions of equimolar quantities (2 mmol) of 2-nitrophenylhydrazine and the appropriate nitrobenzaldehyde in MeOH (20 ml). The reaction mixtures were heated under reflux for 30 min and, after cooling the mixtures, the solvents were removed under reduced pressure. Compounds (II) and (III) were obtained on recrystallization of the appropriate reaction residue from ethyl acetate. Analysis, IR: for (II), 3299, 1615, 1573, 1545 cm−1; for (III), 3286, 1619, 1595, 1569 cm−1. Crystals of (II) were very fragile, and attempts to cut small fragments from larger crystals consistently resulted in shattering.
For each compound, the ═N—NH– having occupancy 0.5. The atom-labelling schemes (Figs. 1 and 2) were such that atom N1 was bonded to atom C11, and the aryl ring was numbered to provide the lowest locant for the nitro group. The H-atom sites bonded to atoms C11 and C12 also have occupancy 0.5.
P21/c was uniquely assigned from the All H atoms were located in difference maps and subsequently treated as riding atoms, with distances C—H = 0.95 Å and N—H = 0.88 Å, and with Uiso(H) = 1.2Ueq(C,N). It became apparent at an early stage that, in each of compounds (I) and (II), the molecules were disordered over two sets of sites related by a centre of inversion, selected in each case as that at (1/2, 1/2, 1/2). Each compound was then modelled using a single aryl ring with a single nitro substituent, all having unit occupancy, and an acyclic fragment –CHFor all compounds, data collection: COLLECT (Nonius, 1999); cell
DENZO (Otwinowski & Minor, 1997) and COLLECT; data reduction: DENZO and COLLECT; program(s) used to solve structure: OSCAIL (McArdle, 2003) and SHELXS97 (Sheldrick, 1997); program(s) used to refine structure: OSCAIL and SHELXL97 (Sheldrick, 1997); molecular graphics: PLATON (Spek, 2003); software used to prepare material for publication: SHELXL97 and PRPKAPPA (Ferguson, 1999).C13H10N4O4 | F(000) = 296 |
Mr = 286.25 | Dx = 1.534 Mg m−3 |
Monoclinic, P21/c | Mo Kα radiation, λ = 0.71073 Å |
Hall symbol: -P 2ybc | Cell parameters from 1415 reflections |
a = 5.9845 (2) Å | θ = 4.3–27.5° |
b = 5.5962 (2) Å | µ = 0.12 mm−1 |
c = 19.1168 (6) Å | T = 120 K |
β = 104.558 (2)° | Block, orange |
V = 619.67 (4) Å3 | 0.60 × 0.25 × 0.10 mm |
Z = 2 |
Nonius KappaCCD area-detector diffractometer | 1415 independent reflections |
Radiation source: Bruker-Nonius FR91 rotating anode | 1286 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.030 |
Detector resolution: 9.091 pixels mm-1 | θmax = 27.5°, θmin = 4.3° |
ϕ and ω scans | h = −7→7 |
Absorption correction: multi-scan (SADABS; Sheldrick, 2003) | k = −7→7 |
Tmin = 0.942, Tmax = 0.988 | l = −23→24 |
8294 measured reflections |
Refinement on F2 | Secondary atom site location: difference Fourier map |
Least-squares matrix: full | Hydrogen site location: inferred from neighbouring sites |
R[F2 > 2σ(F2)] = 0.064 | H-atom parameters constrained |
wR(F2) = 0.149 | w = 1/[σ2(Fo2) + (0.0204P)2 + 1.7995P] where P = (Fo2 + 2Fc2)/3 |
S = 1.07 | (Δ/σ)max < 0.001 |
1415 reflections | Δρmax = 0.24 e Å−3 |
111 parameters | Δρmin = −0.22 e Å−3 |
0 restraints | Extinction correction: SHELXL97 (Sheldrick, 1997), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4 |
Primary atom site location: structure-invariant direct methods | Extinction coefficient: 0.089 (12) |
C13H10N4O4 | V = 619.67 (4) Å3 |
Mr = 286.25 | Z = 2 |
Monoclinic, P21/c | Mo Kα radiation |
a = 5.9845 (2) Å | µ = 0.12 mm−1 |
b = 5.5962 (2) Å | T = 120 K |
c = 19.1168 (6) Å | 0.60 × 0.25 × 0.10 mm |
β = 104.558 (2)° |
Nonius KappaCCD area-detector diffractometer | 1415 independent reflections |
Absorption correction: multi-scan (SADABS; Sheldrick, 2003) | 1286 reflections with I > 2σ(I) |
Tmin = 0.942, Tmax = 0.988 | Rint = 0.030 |
8294 measured reflections |
R[F2 > 2σ(F2)] = 0.064 | 0 restraints |
wR(F2) = 0.149 | H-atom parameters constrained |
S = 1.07 | Δρmax = 0.24 e Å−3 |
1415 reflections | Δρmin = −0.22 e Å−3 |
111 parameters |
x | y | z | Uiso*/Ueq | Occ. (<1) | |
O31 | −0.1887 (3) | 0.8431 (4) | 0.43869 (10) | 0.0298 (5) | |
O32 | −0.4466 (3) | 0.7503 (4) | 0.34233 (12) | 0.0363 (6) | |
N1 | 0.4510 (7) | 0.2491 (8) | 0.4389 (2) | 0.0188 (9) | 0.50 |
N2 | 0.5531 (7) | 0.4005 (8) | 0.4928 (2) | 0.0176 (9) | 0.50 |
N13 | −0.2584 (4) | 0.7171 (4) | 0.38563 (11) | 0.0213 (5) | |
C11 | 0.2337 (4) | 0.2959 (5) | 0.39702 (13) | 0.0198 (6) | |
C12 | 0.1116 (4) | 0.4918 (5) | 0.41351 (13) | 0.0188 (5) | |
C13 | −0.1153 (4) | 0.5182 (5) | 0.37179 (13) | 0.0186 (5) | |
C14 | −0.2180 (4) | 0.3638 (5) | 0.31671 (13) | 0.0209 (6) | |
C15 | −0.0907 (4) | 0.1734 (5) | 0.30107 (13) | 0.0220 (6) | |
C16 | 0.1348 (4) | 0.1399 (5) | 0.34160 (13) | 0.0216 (6) | |
C27 | 0.7587 (8) | 0.3420 (9) | 0.5287 (3) | 0.0186 (10) | 0.50 |
H1 | 0.5247 | 0.1201 | 0.4307 | 0.023* | 0.50 |
H11 | 0.3926 | 0.2922 | 0.4218 | 0.024* | 0.50 |
H12 | 0.1832 | 0.5996 | 0.4508 | 0.023* | 0.50 |
H14 | −0.3732 | 0.3878 | 0.2900 | 0.025* | |
H15 | −0.1572 | 0.0665 | 0.2629 | 0.026* | |
H16 | 0.2220 | 0.0087 | 0.3312 | 0.026* | |
H27 | 0.8266 | 0.1966 | 0.5187 | 0.022* | 0.50 |
U11 | U22 | U33 | U12 | U13 | U23 | |
O31 | 0.0323 (11) | 0.0288 (11) | 0.0263 (10) | 0.0069 (9) | 0.0038 (8) | −0.0050 (9) |
O32 | 0.0229 (10) | 0.0388 (13) | 0.0395 (12) | 0.0133 (9) | −0.0061 (8) | −0.0011 (10) |
N1 | 0.0128 (18) | 0.022 (2) | 0.020 (2) | 0.0050 (16) | 0.0012 (15) | −0.0027 (17) |
N2 | 0.0143 (19) | 0.021 (2) | 0.0163 (18) | −0.0015 (16) | 0.0024 (15) | −0.0009 (16) |
N13 | 0.0178 (10) | 0.0258 (12) | 0.0203 (10) | 0.0038 (9) | 0.0046 (8) | 0.0043 (9) |
C11 | 0.0166 (11) | 0.0221 (13) | 0.0189 (11) | 0.0016 (10) | 0.0013 (9) | 0.0019 (10) |
C12 | 0.0197 (12) | 0.0208 (12) | 0.0148 (11) | −0.0001 (10) | 0.0024 (9) | 0.0014 (9) |
C13 | 0.0176 (12) | 0.0197 (12) | 0.0193 (11) | 0.0028 (10) | 0.0062 (9) | 0.0033 (10) |
C14 | 0.0166 (11) | 0.0258 (13) | 0.0193 (11) | −0.0011 (10) | 0.0023 (9) | 0.0032 (10) |
C15 | 0.0222 (12) | 0.0231 (13) | 0.0198 (12) | −0.0023 (10) | 0.0036 (10) | −0.0016 (10) |
C16 | 0.0233 (12) | 0.0204 (12) | 0.0213 (12) | 0.0021 (10) | 0.0059 (10) | −0.0011 (10) |
C27 | 0.017 (2) | 0.018 (2) | 0.020 (2) | 0.0006 (18) | 0.0028 (18) | −0.0015 (19) |
N1—N2 | 1.355 (6) | C12—H12 | 0.95 |
N1—C11 | 1.370 (4) | C13—C14 | 1.381 (4) |
N1—H1 | 0.88 | C13—N13 | 1.469 (3) |
N2—C27 | 1.291 (6) | N13—O31 | 1.219 (3) |
C27—C12i | 1.503 (5) | N13—O32 | 1.233 (3) |
C27—H27 | 0.95 | C14—C15 | 1.386 (4) |
C11—C16 | 1.386 (4) | C14—H14 | 0.95 |
C11—C12 | 1.397 (4) | C15—C16 | 1.390 (3) |
C11—H11 | 0.95 | C15—H15 | 0.95 |
C12—C13 | 1.399 (3) | C16—H16 | 0.95 |
N2—N1—C11 | 120.3 (4) | C13—C12—H12 | 123.4 |
N2—N1—H1 | 119.8 | C14—C13—C12 | 123.4 (2) |
C11—N1—H1 | 119.8 | C14—C13—N13 | 116.3 (2) |
N2—N1—H11 | 108.4 | C12—C13—N13 | 120.3 (2) |
H1—N1—H11 | 127.2 | O31—N13—O32 | 122.4 (2) |
C27—N2—N1 | 115.6 (4) | O31—N13—C13 | 119.7 (2) |
N2—C27—C12i | 118.8 (4) | O32—N13—C13 | 118.0 (2) |
N2—C27—H27 | 120.6 | C13—C14—C15 | 118.8 (2) |
C12i—C27—H27 | 120.6 | C13—C14—H14 | 120.6 |
N1—C11—C16 | 119.1 (3) | C15—C14—H14 | 120.6 |
N1—C11—C12 | 119.5 (3) | C14—C15—C16 | 119.5 (2) |
C16—C11—C12 | 121.3 (2) | C14—C15—H15 | 120.2 |
C16—C11—H11 | 123.3 | C16—C15—H15 | 120.2 |
C12—C11—H11 | 114.8 | C11—C16—C15 | 120.6 (2) |
C11—C12—C13 | 116.2 (2) | C11—C16—H16 | 119.7 |
C11—C12—H12 | 120.3 | C15—C16—H16 | 119.7 |
C11—N1—N2—C27 | −179.4 (4) | C12—C13—N13—O31 | −8.4 (3) |
N1—N2—C27—C12i | 176.5 (4) | C14—C13—N13—O32 | −8.8 (3) |
N2—N1—C11—C16 | 179.1 (3) | C12—C13—N13—O32 | 171.5 (2) |
N2—N1—C11—C12 | −4.5 (5) | C12—C13—C14—C15 | −0.6 (4) |
N1—C11—C12—C13 | −175.5 (3) | N13—C13—C14—C15 | 179.7 (2) |
C16—C11—C12—C13 | 0.9 (4) | C13—C14—C15—C16 | 1.0 (4) |
C11—C12—C13—C14 | −0.4 (4) | N1—C11—C16—C15 | 175.9 (3) |
C11—C12—C13—N13 | 179.3 (2) | C12—C11—C16—C15 | −0.5 (4) |
C14—C13—N13—O31 | 171.3 (2) | C14—C15—C16—C11 | −0.5 (4) |
Symmetry code: (i) −x+1, −y+1, −z+1. |
D—H···A | D—H | H···A | D···A | D—H···A |
N1—H1···O31ii | 0.88 | 2.29 | 3.133 (5) | 161 |
C16—H16···O32ii | 0.95 | 2.42 | 3.318 (3) | 158 |
C27—H27···O31ii | 0.95 | 2.49 | 3.335 (5) | 149 |
C27—H27···O31i | 0.95 | 2.13 | 2.698 (5) | 117 |
Symmetry codes: (i) −x+1, −y+1, −z+1; (ii) x+1, y−1, z. |
C13H10N4O4 | F(000) = 296 |
Mr = 286.25 | Dx = 1.536 Mg m−3 |
Monoclinic, P21/c | Mo Kα radiation, λ = 0.71073 Å |
Hall symbol: -P 2ybc | Cell parameters from 1415 reflections |
a = 6.2280 (7) Å | θ = 3.5–27.6° |
b = 5.3947 (10) Å | µ = 0.12 mm−1 |
c = 19.249 (4) Å | T = 120 K |
β = 106.847 (11)° | Plate, red |
V = 618.98 (19) Å3 | 0.62 × 0.12 × 0.03 mm |
Z = 2 |
Nonius KappaCCD area-detector diffractometer | 1415 independent reflections |
Radiation source: Bruker-Nonius FR91 rotating anode | 744 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.077 |
Detector resolution: 9.091 pixels mm-1 | θmax = 27.6°, θmin = 3.5° |
ϕ and ω scans | h = −8→7 |
Absorption correction: multi-scan (SADABS; Sheldrick, 2003) | k = −7→6 |
Tmin = 0.947, Tmax = 0.997 | l = −24→24 |
5521 measured reflections |
Refinement on F2 | Primary atom site location: structure-invariant direct methods |
Least-squares matrix: full | Secondary atom site location: difference Fourier map |
R[F2 > 2σ(F2)] = 0.068 | Hydrogen site location: inferred from neighbouring sites |
wR(F2) = 0.208 | H-atom parameters constrained |
S = 1.04 | w = 1/[σ2(Fo2) + (0.0905P)2 + 0.3625P] where P = (Fo2 + 2Fc2)/3 |
1415 reflections | (Δ/σ)max < 0.001 |
109 parameters | Δρmax = 0.24 e Å−3 |
0 restraints | Δρmin = −0.30 e Å−3 |
C13H10N4O4 | V = 618.98 (19) Å3 |
Mr = 286.25 | Z = 2 |
Monoclinic, P21/c | Mo Kα radiation |
a = 6.2280 (7) Å | µ = 0.12 mm−1 |
b = 5.3947 (10) Å | T = 120 K |
c = 19.249 (4) Å | 0.62 × 0.12 × 0.03 mm |
β = 106.847 (11)° |
Nonius KappaCCD area-detector diffractometer | 1415 independent reflections |
Absorption correction: multi-scan (SADABS; Sheldrick, 2003) | 744 reflections with I > 2σ(I) |
Tmin = 0.947, Tmax = 0.997 | Rint = 0.077 |
5521 measured reflections |
R[F2 > 2σ(F2)] = 0.068 | 0 restraints |
wR(F2) = 0.208 | H-atom parameters constrained |
S = 1.04 | Δρmax = 0.24 e Å−3 |
1415 reflections | Δρmin = −0.30 e Å−3 |
109 parameters |
x | y | z | Uiso*/Ueq | Occ. (<1) | |
O21 | −0.1660 (4) | 0.8644 (5) | 0.44227 (13) | 0.0396 (7) | |
O22 | −0.4434 (4) | 0.7607 (5) | 0.35056 (13) | 0.0432 (8) | |
N1 | 0.2348 (8) | 0.6358 (10) | 0.4693 (3) | 0.0253 (12) | 0.50 |
N2 | 0.4566 (7) | 0.5792 (10) | 0.5045 (3) | 0.0257 (13) | 0.50 |
N12 | −0.2507 (4) | 0.7293 (5) | 0.38996 (15) | 0.0333 (7) | |
C11 | 0.1037 (5) | 0.4953 (6) | 0.41451 (17) | 0.0312 (9) | |
C12 | −0.1197 (5) | 0.5262 (6) | 0.37373 (17) | 0.0291 (8) | |
C13 | −0.2236 (5) | 0.3686 (7) | 0.31694 (18) | 0.0317 (9) | |
C14 | −0.1032 (5) | 0.1774 (7) | 0.29945 (17) | 0.0320 (9) | |
C15 | 0.1177 (5) | 0.1419 (7) | 0.33987 (18) | 0.0328 (9) | |
C16 | 0.2211 (5) | 0.2968 (7) | 0.39653 (18) | 0.0359 (9) | |
C27 | 0.5502 (9) | 0.7246 (13) | 0.5564 (3) | 0.0291 (15) | 0.50 |
H1 | 0.1759 | 0.7687 | 0.4830 | 0.030* | 0.50 |
H11 | 0.1733 | 0.6053 | 0.4530 | 0.037* | 0.50 |
H13 | −0.3765 | 0.3927 | 0.2904 | 0.038* | |
H14 | −0.1710 | 0.0705 | 0.2600 | 0.038* | |
H15 | 0.1998 | 0.0077 | 0.3283 | 0.039* | |
H16 | 0.3731 | 0.2688 | 0.4234 | 0.043* | 0.50 |
H27 | 0.4632 | 0.8590 | 0.5652 | 0.035* | 0.50 |
U11 | U22 | U33 | U12 | U13 | U23 | |
O21 | 0.0426 (14) | 0.0410 (16) | 0.0316 (14) | 0.0016 (11) | 0.0047 (11) | −0.0045 (12) |
O22 | 0.0284 (13) | 0.0506 (18) | 0.0436 (16) | 0.0057 (12) | −0.0006 (12) | −0.0004 (12) |
N1 | 0.022 (3) | 0.027 (3) | 0.024 (3) | 0.004 (2) | 0.003 (2) | −0.002 (2) |
N2 | 0.015 (3) | 0.037 (4) | 0.021 (3) | 0.000 (2) | −0.001 (2) | −0.004 (3) |
N12 | 0.0304 (16) | 0.0405 (19) | 0.0262 (16) | 0.0003 (14) | 0.0037 (13) | 0.0026 (14) |
C11 | 0.0336 (18) | 0.036 (2) | 0.0198 (17) | −0.0084 (16) | 0.0005 (14) | 0.0037 (16) |
C12 | 0.0264 (17) | 0.032 (2) | 0.0293 (19) | 0.0011 (15) | 0.0090 (15) | 0.0056 (15) |
C13 | 0.0241 (16) | 0.040 (2) | 0.0288 (19) | −0.0037 (15) | 0.0048 (14) | 0.0027 (16) |
C14 | 0.0292 (17) | 0.037 (2) | 0.0255 (19) | −0.0022 (15) | 0.0010 (15) | −0.0010 (16) |
C15 | 0.0305 (18) | 0.037 (2) | 0.032 (2) | 0.0034 (15) | 0.0097 (16) | 0.0055 (16) |
C16 | 0.0241 (17) | 0.049 (2) | 0.0296 (19) | −0.0041 (16) | −0.0007 (14) | 0.0113 (18) |
C27 | 0.017 (3) | 0.037 (4) | 0.034 (4) | 0.005 (3) | 0.007 (3) | 0.003 (3) |
N1—C11 | 1.362 (6) | C12—N12 | 1.453 (4) |
N1—N2 | 1.384 (6) | N12—O21 | 1.231 (3) |
N1—H1 | 0.88 | N12—O22 | 1.232 (3) |
N2—C27 | 1.271 (8) | C13—C14 | 1.373 (5) |
C27—C16i | 1.454 (6) | C13—H13 | 0.95 |
C27—H27 | 0.95 | C14—C15 | 1.383 (4) |
C11—C12 | 1.395 (4) | C14—H14 | 0.95 |
C11—C16 | 1.395 (5) | C15—C16 | 1.377 (5) |
C11—H11 | 0.95 | C15—H15 | 0.95 |
C12—C13 | 1.388 (5) | C16—H16 | 0.95 |
C11—N1—N2 | 123.0 (5) | O21—N12—C12 | 119.2 (3) |
C11—N1—H1 | 118.5 | O22—N12—C12 | 118.6 (3) |
N2—N1—H1 | 118.5 | C14—C13—C12 | 119.4 (3) |
N2—N1—H11 | 141.9 | C14—C13—H13 | 120.3 |
C27—N2—N1 | 114.4 (5) | C12—C13—H13 | 120.3 |
N2—C27—C16i | 125.8 (5) | C13—C14—C15 | 119.4 (3) |
N2—C27—H27 | 117.1 | C13—C14—H14 | 120.3 |
C16i—C27—H27 | 117.1 | C15—C14—H14 | 120.3 |
N1—C11—C12 | 130.2 (4) | C16—C15—C14 | 121.5 (3) |
N1—C11—C16 | 112.3 (3) | C16—C15—H15 | 119.3 |
C12—C11—C16 | 117.4 (3) | C14—C15—H15 | 119.3 |
C12—C11—H11 | 121.3 | C15—C16—C11 | 120.2 (3) |
C16—C11—H11 | 121.3 | C15—C16—C27i | 126.5 (4) |
C13—C12—C11 | 122.1 (3) | C11—C16—C27i | 113.3 (4) |
C13—C12—N12 | 118.0 (3) | C15—C16—H16 | 119.9 |
C11—C12—N12 | 120.0 (3) | C11—C16—H16 | 119.9 |
O21—N12—O22 | 122.2 (3) | ||
C11—N1—N2—C27 | −177.0 (5) | C11—C12—N12—O22 | 175.9 (3) |
N1—N2—C27—C16i | 178.1 (5) | C11—C12—C13—C14 | −0.7 (5) |
N2—N1—C11—C12 | −179.8 (4) | N12—C12—C13—C14 | 178.9 (3) |
N2—N1—C11—C16 | −2.4 (6) | C12—C13—C14—C15 | 1.6 (5) |
N1—C11—C12—C13 | 176.8 (4) | C13—C14—C15—C16 | −1.2 (5) |
C16—C11—C12—C13 | −0.5 (5) | C14—C15—C16—C11 | −0.1 (5) |
N1—C11—C12—N12 | −2.8 (6) | C14—C15—C16—C27i | 178.7 (4) |
C16—C11—C12—N12 | 179.9 (3) | N1—C11—C16—C15 | −176.9 (3) |
C13—C12—N12—O21 | 176.5 (3) | C12—C11—C16—C15 | 0.9 (5) |
C11—C12—N12—O21 | −3.9 (4) | N1—C11—C16—C27i | 4.2 (5) |
C13—C12—N12—O22 | −3.7 (4) | C12—C11—C16—C27i | −178.0 (4) |
Symmetry code: (i) −x+1, −y+1, −z+1. |
D—H···A | D—H | H···A | D···A | D—H···A |
N1—H1···O21 | 0.88 | 2.11 | 2.696 (6) | 123 |
N1—H1···O21ii | 0.88 | 2.46 | 3.282 (6) | 156 |
C15—H15···O22iii | 0.95 | 2.52 | 3.379 (4) | 151 |
C27—H27···O21ii | 0.95 | 2.35 | 3.268 (7) | 163 |
Symmetry codes: (ii) −x, −y+2, −z+1; (iii) x+1, y−1, z. |
C13H10N4O4 | F(000) = 592 |
Mr = 286.25 | Dx = 1.565 Mg m−3 |
Monoclinic, P21/c | Mo Kα radiation, λ = 0.71073 Å |
Hall symbol: -P 2ybc | Cell parameters from 2795 reflections |
a = 17.9563 (16) Å | θ = 3.9–27.7° |
b = 3.7160 (2) Å | µ = 0.12 mm−1 |
c = 22.0624 (17) Å | T = 120 K |
β = 124.406 (5)° | Plate, orange |
V = 1214.58 (16) Å3 | 0.36 × 0.34 × 0.02 mm |
Z = 4 |
Nonius KappaCCD area-detector diffractometer | 2795 independent reflections |
Radiation source: Bruker-Nonius FR91 rotating anode | 1794 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.077 |
Detector resolution: 9.091 pixels mm-1 | θmax = 27.7°, θmin = 3.9° |
ϕ and ω scans | h = −22→23 |
Absorption correction: multi-scan (SADABS; Sheldrick, 2003) | k = −4→4 |
Tmin = 0.964, Tmax = 0.998 | l = −28→28 |
20354 measured reflections |
Refinement on F2 | Primary atom site location: structure-invariant direct methods |
Least-squares matrix: full | Secondary atom site location: difference Fourier map |
R[F2 > 2σ(F2)] = 0.069 | Hydrogen site location: inferred from neighbouring sites |
wR(F2) = 0.170 | H-atom parameters constrained |
S = 1.08 | w = 1/[σ2(Fo2) + (0.0579P)2 + 1.5262P] where P = (Fo2 + 2Fc2)/3 |
2795 reflections | (Δ/σ)max < 0.001 |
190 parameters | Δρmax = 0.25 e Å−3 |
0 restraints | Δρmin = −0.31 e Å−3 |
C13H10N4O4 | V = 1214.58 (16) Å3 |
Mr = 286.25 | Z = 4 |
Monoclinic, P21/c | Mo Kα radiation |
a = 17.9563 (16) Å | µ = 0.12 mm−1 |
b = 3.7160 (2) Å | T = 120 K |
c = 22.0624 (17) Å | 0.36 × 0.34 × 0.02 mm |
β = 124.406 (5)° |
Nonius KappaCCD area-detector diffractometer | 2795 independent reflections |
Absorption correction: multi-scan (SADABS; Sheldrick, 2003) | 1794 reflections with I > 2σ(I) |
Tmin = 0.964, Tmax = 0.998 | Rint = 0.077 |
20354 measured reflections |
R[F2 > 2σ(F2)] = 0.069 | 0 restraints |
wR(F2) = 0.170 | H-atom parameters constrained |
S = 1.08 | Δρmax = 0.25 e Å−3 |
2795 reflections | Δρmin = −0.31 e Å−3 |
190 parameters |
x | y | z | Uiso*/Ueq | ||
O21 | 0.58067 (12) | 0.6313 (6) | 0.51862 (10) | 0.0299 (5) | |
O22 | 0.72540 (13) | 0.6652 (6) | 0.57542 (10) | 0.0316 (5) | |
O41 | −0.05385 (15) | 1.3148 (7) | 0.02928 (12) | 0.0511 (7) | |
O42 | −0.10049 (15) | 1.0647 (8) | 0.09054 (14) | 0.0566 (8) | |
N1 | 0.47229 (14) | 0.8944 (6) | 0.38680 (11) | 0.0205 (5) | |
N2 | 0.39114 (15) | 0.9854 (6) | 0.32429 (11) | 0.0225 (5) | |
N12 | 0.64900 (15) | 0.7228 (6) | 0.52058 (11) | 0.0214 (5) | |
N24 | −0.04001 (17) | 1.1624 (7) | 0.08371 (14) | 0.0357 (7) | |
C11 | 0.55111 (17) | 0.9737 (7) | 0.39357 (13) | 0.0188 (6) | |
C12 | 0.63777 (18) | 0.8951 (7) | 0.45759 (13) | 0.0193 (6) | |
C13 | 0.71669 (18) | 0.9779 (7) | 0.46240 (14) | 0.0217 (6) | |
C14 | 0.71247 (19) | 1.1358 (8) | 0.40452 (15) | 0.0233 (6) | |
C15 | 0.62839 (18) | 1.2127 (7) | 0.34086 (14) | 0.0220 (6) | |
C16 | 0.55016 (18) | 1.1400 (7) | 0.33569 (14) | 0.0213 (6) | |
C21 | 0.22943 (18) | 0.9782 (7) | 0.26158 (14) | 0.0210 (6) | |
C22 | 0.21069 (18) | 1.1358 (8) | 0.19648 (14) | 0.0232 (6) | |
C23 | 0.12273 (19) | 1.1935 (8) | 0.13793 (15) | 0.0256 (6) | |
C24 | 0.05384 (18) | 1.0972 (8) | 0.14555 (15) | 0.0264 (7) | |
C25 | 0.06954 (19) | 0.9461 (8) | 0.20868 (15) | 0.0276 (7) | |
C26 | 0.15813 (18) | 0.8871 (8) | 0.26730 (15) | 0.0239 (6) | |
C27 | 0.32166 (18) | 0.9025 (7) | 0.32442 (14) | 0.0230 (6) | |
H1 | 0.4739 | 0.7844 | 0.4228 | 0.025* | |
H13 | 0.7737 | 0.9243 | 0.5061 | 0.026* | |
H14 | 0.7662 | 1.1923 | 0.4077 | 0.028* | |
H15 | 0.6252 | 1.3177 | 0.3002 | 0.026* | |
H16 | 0.4939 | 1.2031 | 0.2921 | 0.026* | |
H22 | 0.2590 | 1.2032 | 0.1927 | 0.028* | |
H23 | 0.1097 | 1.2966 | 0.0935 | 0.031* | |
H25 | 0.0207 | 0.8833 | 0.2121 | 0.033* | |
H26 | 0.1703 | 0.7844 | 0.3115 | 0.029* | |
H27 | 0.3304 | 0.7886 | 0.3665 | 0.028* |
U11 | U22 | U33 | U12 | U13 | U23 | |
O21 | 0.0233 (11) | 0.0434 (13) | 0.0239 (10) | −0.0017 (10) | 0.0139 (9) | 0.0079 (9) |
O22 | 0.0224 (11) | 0.0464 (14) | 0.0218 (10) | 0.0030 (10) | 0.0098 (9) | 0.0083 (10) |
O41 | 0.0314 (13) | 0.0719 (19) | 0.0329 (12) | 0.0047 (13) | 0.0078 (10) | 0.0213 (13) |
O42 | 0.0227 (12) | 0.075 (2) | 0.0571 (16) | −0.0030 (13) | 0.0137 (12) | 0.0224 (14) |
N1 | 0.0190 (12) | 0.0260 (13) | 0.0156 (10) | 0.0003 (10) | 0.0092 (9) | 0.0040 (10) |
N2 | 0.0223 (12) | 0.0246 (13) | 0.0184 (11) | 0.0013 (10) | 0.0102 (10) | −0.0004 (10) |
N12 | 0.0201 (12) | 0.0251 (13) | 0.0183 (11) | −0.0002 (10) | 0.0104 (10) | −0.0004 (10) |
N24 | 0.0257 (14) | 0.0342 (16) | 0.0324 (14) | −0.0002 (12) | 0.0075 (12) | 0.0047 (12) |
C11 | 0.0215 (14) | 0.0173 (14) | 0.0192 (13) | −0.0020 (11) | 0.0124 (11) | −0.0027 (11) |
C12 | 0.0248 (14) | 0.0155 (14) | 0.0175 (12) | −0.0001 (11) | 0.0119 (11) | −0.0008 (11) |
C13 | 0.0206 (14) | 0.0214 (15) | 0.0189 (13) | −0.0009 (12) | 0.0086 (11) | −0.0023 (11) |
C14 | 0.0240 (15) | 0.0229 (16) | 0.0292 (15) | −0.0028 (12) | 0.0187 (13) | −0.0021 (12) |
C15 | 0.0279 (15) | 0.0213 (15) | 0.0202 (13) | −0.0023 (12) | 0.0158 (12) | −0.0007 (11) |
C16 | 0.0246 (15) | 0.0201 (15) | 0.0165 (12) | 0.0007 (12) | 0.0099 (11) | 0.0002 (11) |
C21 | 0.0239 (14) | 0.0171 (14) | 0.0226 (13) | −0.0002 (12) | 0.0135 (12) | −0.0020 (11) |
C22 | 0.0238 (15) | 0.0231 (15) | 0.0248 (14) | 0.0011 (12) | 0.0149 (12) | 0.0013 (12) |
C23 | 0.0299 (16) | 0.0233 (15) | 0.0207 (13) | 0.0004 (13) | 0.0126 (12) | 0.0008 (12) |
C24 | 0.0184 (14) | 0.0251 (16) | 0.0256 (14) | 0.0026 (12) | 0.0064 (12) | 0.0000 (12) |
C25 | 0.0263 (16) | 0.0241 (16) | 0.0315 (16) | −0.0001 (13) | 0.0157 (14) | 0.0012 (13) |
C26 | 0.0241 (15) | 0.0260 (16) | 0.0226 (13) | −0.0002 (13) | 0.0137 (12) | 0.0020 (12) |
C27 | 0.0270 (15) | 0.0214 (15) | 0.0198 (13) | 0.0012 (12) | 0.0126 (12) | −0.0004 (11) |
N1—N2 | 1.367 (3) | C14—H14 | 0.95 |
N1—C11 | 1.368 (3) | C15—H15 | 0.95 |
N1—H1 | 0.88 | C16—H16 | 0.95 |
N2—C27 | 1.287 (3) | C21—C22 | 1.405 (4) |
C27—C21 | 1.466 (4) | C22—C23 | 1.380 (4) |
C27—H27 | 0.95 | C23—C24 | 1.386 (4) |
C11—C12 | 1.421 (4) | C24—C25 | 1.375 (4) |
C12—C13 | 1.395 (4) | C25—C26 | 1.388 (4) |
C13—C14 | 1.368 (4) | C26—C21 | 1.397 (4) |
C14—C15 | 1.392 (4) | C24—N24 | 1.470 (4) |
C15—C16 | 1.370 (4) | N24—O41 | 1.219 (3) |
C16—C11 | 1.410 (4) | N24—O42 | 1.232 (3) |
C12—N12 | 1.437 (3) | C22—H22 | 0.95 |
N12—O21 | 1.250 (3) | C23—H23 | 0.95 |
N12—O22 | 1.231 (3) | C25—H25 | 0.95 |
C13—H13 | 0.95 | C26—H26 | 0.95 |
N2—N1—C11 | 120.3 (2) | C15—C16—C11 | 121.6 (2) |
N2—N1—H1 | 119.9 | C15—C16—H16 | 119.2 |
C11—N1—H1 | 119.9 | C11—C16—H16 | 119.2 |
C27—N2—N1 | 114.9 (2) | C26—C21—C22 | 119.4 (3) |
N2—C27—C21 | 122.0 (2) | C26—C21—C27 | 118.1 (2) |
N2—C27—H27 | 119.0 | C22—C21—C27 | 122.5 (2) |
C21—C27—H27 | 119.0 | C23—C22—C21 | 120.6 (3) |
N1—C11—C16 | 120.9 (2) | C23—C22—H22 | 119.7 |
N1—C11—C12 | 123.3 (2) | C21—C22—H22 | 119.7 |
C16—C11—C12 | 115.9 (2) | C22—C23—C24 | 118.3 (3) |
C13—C12—C11 | 121.7 (2) | C22—C23—H23 | 120.8 |
C13—C12—N12 | 116.3 (2) | C24—C23—H23 | 120.8 |
C11—C12—N12 | 122.0 (2) | C25—C24—C23 | 122.8 (3) |
O22—N12—O21 | 120.9 (2) | C25—C24—N24 | 118.6 (3) |
O22—N12—C12 | 119.8 (2) | C23—C24—N24 | 118.6 (3) |
O21—N12—C12 | 119.3 (2) | O41—N24—O42 | 123.6 (3) |
C14—C13—C12 | 120.4 (2) | O41—N24—C24 | 118.6 (3) |
C14—C13—H13 | 119.8 | O42—N24—C24 | 117.7 (3) |
C12—C13—H13 | 119.8 | C24—C25—C26 | 118.6 (3) |
C13—C14—C15 | 119.1 (3) | C24—C25—H25 | 120.7 |
C13—C14—H14 | 120.5 | C26—C25—H25 | 120.7 |
C15—C14—H14 | 120.5 | C25—C26—C21 | 120.3 (3) |
C16—C15—C14 | 121.3 (2) | C25—C26—H26 | 119.9 |
C16—C15—H15 | 119.3 | C21—C26—H26 | 119.9 |
C14—C15—H15 | 119.3 | ||
C11—N1—N2—C27 | −179.1 (2) | C12—C11—C16—C15 | 1.4 (4) |
N1—N2—C27—C21 | −179.5 (2) | N2—C27—C21—C26 | −178.4 (3) |
N2—N1—C11—C16 | −1.9 (4) | N2—C27—C21—C22 | 1.9 (4) |
N2—N1—C11—C12 | 178.4 (2) | C26—C21—C22—C23 | −1.4 (4) |
N1—C11—C12—C13 | 179.6 (3) | C27—C21—C22—C23 | 178.3 (3) |
C16—C11—C12—C13 | −0.1 (4) | C21—C22—C23—C24 | 1.0 (4) |
N1—C11—C12—N12 | 0.3 (4) | C22—C23—C24—C25 | −0.3 (4) |
C16—C11—C12—N12 | −179.4 (2) | C22—C23—C24—N24 | 179.2 (3) |
C13—C12—N12—O22 | 1.9 (4) | C25—C24—N24—O41 | 176.0 (3) |
C11—C12—N12—O22 | −178.8 (2) | C23—C24—N24—O41 | −3.5 (4) |
C13—C12—N12—O21 | −177.7 (2) | C25—C24—N24—O42 | −2.8 (4) |
C11—C12—N12—O21 | 1.7 (4) | C23—C24—N24—O42 | 177.7 (3) |
C11—C12—C13—C14 | −0.6 (4) | C23—C24—C25—C26 | 0.0 (4) |
N12—C12—C13—C14 | 178.7 (2) | N24—C24—C25—C26 | −179.5 (3) |
C12—C13—C14—C15 | 0.0 (4) | C24—C25—C26—C21 | −0.4 (4) |
C13—C14—C15—C16 | 1.3 (4) | C22—C21—C26—C25 | 1.1 (4) |
C14—C15—C16—C11 | −2.1 (4) | C27—C21—C26—C25 | −178.6 (3) |
N1—C11—C16—C15 | −178.3 (3) |
D—H···A | D—H | H···A | D···A | D—H···A |
N1—H1···O21 | 0.88 | 1.97 | 2.609 (3) | 128 |
N1—H1···O21i | 0.88 | 2.54 | 3.364 (3) | 157 |
Symmetry code: (i) −x+1, −y+1, −z+1. |
Experimental details
(I) | (II) | (III) | |
Crystal data | |||
Chemical formula | C13H10N4O4 | C13H10N4O4 | C13H10N4O4 |
Mr | 286.25 | 286.25 | 286.25 |
Crystal system, space group | Monoclinic, P21/c | Monoclinic, P21/c | Monoclinic, P21/c |
Temperature (K) | 120 | 120 | 120 |
a, b, c (Å) | 5.9845 (2), 5.5962 (2), 19.1168 (6) | 6.2280 (7), 5.3947 (10), 19.249 (4) | 17.9563 (16), 3.7160 (2), 22.0624 (17) |
β (°) | 104.558 (2) | 106.847 (11) | 124.406 (5) |
V (Å3) | 619.67 (4) | 618.98 (19) | 1214.58 (16) |
Z | 2 | 2 | 4 |
Radiation type | Mo Kα | Mo Kα | Mo Kα |
µ (mm−1) | 0.12 | 0.12 | 0.12 |
Crystal size (mm) | 0.60 × 0.25 × 0.10 | 0.62 × 0.12 × 0.03 | 0.36 × 0.34 × 0.02 |
Data collection | |||
Diffractometer | Nonius KappaCCD area-detector diffractometer | Nonius KappaCCD area-detector diffractometer | Nonius KappaCCD area-detector diffractometer |
Absorption correction | Multi-scan (SADABS; Sheldrick, 2003) | Multi-scan (SADABS; Sheldrick, 2003) | Multi-scan (SADABS; Sheldrick, 2003) |
Tmin, Tmax | 0.942, 0.988 | 0.947, 0.997 | 0.964, 0.998 |
No. of measured, independent and observed [I > 2σ(I)] reflections | 8294, 1415, 1286 | 5521, 1415, 744 | 20354, 2795, 1794 |
Rint | 0.030 | 0.077 | 0.077 |
(sin θ/λ)max (Å−1) | 0.650 | 0.651 | 0.654 |
Refinement | |||
R[F2 > 2σ(F2)], wR(F2), S | 0.064, 0.149, 1.07 | 0.068, 0.208, 1.04 | 0.069, 0.170, 1.08 |
No. of reflections | 1415 | 1415 | 2795 |
No. of parameters | 111 | 109 | 190 |
H-atom treatment | H-atom parameters constrained | H-atom parameters constrained | H-atom parameters constrained |
Δρmax, Δρmin (e Å−3) | 0.24, −0.22 | 0.24, −0.30 | 0.25, −0.31 |
Computer programs: COLLECT (Nonius, 1999), DENZO (Otwinowski & Minor, 1997) and COLLECT, DENZO and COLLECT, OSCAIL (McArdle, 2003) and SHELXS97 (Sheldrick, 1997), OSCAIL and SHELXL97 (Sheldrick, 1997), PLATON (Spek, 2003), SHELXL97 and PRPKAPPA (Ferguson, 1999).
D—H···A | D—H | H···A | D···A | D—H···A |
N1—H1···O31i | 0.88 | 2.29 | 3.133 (5) | 161 |
C16—H16···O32i | 0.95 | 2.42 | 3.318 (3) | 158 |
C27—H27···O31i | 0.95 | 2.49 | 3.335 (5) | 149 |
C27—H27···O31ii | 0.95 | 2.13 | 2.698 (5) | 117 |
Symmetry codes: (i) x+1, y−1, z; (ii) −x+1, −y+1, −z+1. |
D—H···A | D—H | H···A | D···A | D—H···A |
N1—H1···O21 | 0.88 | 2.11 | 2.696 (6) | 123 |
N1—H1···O21i | 0.88 | 2.46 | 3.282 (6) | 156 |
C15—H15···O22ii | 0.95 | 2.52 | 3.379 (4) | 151 |
C27—H27···O21i | 0.95 | 2.35 | 3.268 (7) | 163 |
Symmetry codes: (i) −x, −y+2, −z+1; (ii) x+1, y−1, z. |
C11—C12 | 1.421 (4) | C21—C22 | 1.405 (4) |
C12—C13 | 1.395 (4) | C22—C23 | 1.380 (4) |
C13—C14 | 1.368 (4) | C23—C24 | 1.386 (4) |
C14—C15 | 1.392 (4) | C24—C25 | 1.375 (4) |
C15—C16 | 1.370 (4) | C25—C26 | 1.388 (4) |
C16—C11 | 1.410 (4) | C26—C21 | 1.397 (4) |
C12—N12 | 1.437 (3) | C24—N24 | 1.470 (4) |
N12—O21 | 1.250 (3) | N24—O41 | 1.219 (3) |
N12—O22 | 1.231 (3) | N24—O42 | 1.232 (3) |
D—H···A | D—H | H···A | D···A | D—H···A |
N1—H1···O21 | 0.88 | 1.97 | 2.609 (3) | 128 |
N1—H1···O21i | 0.88 | 2.54 | 3.364 (3) | 157 |
Symmetry code: (i) −x+1, −y+1, −z+1. |
Acknowledgements
The X-ray data were collected at the EPSRC X-ray Crystallographic Service, University of Southampton; the authors thank the staff for all their help and advice. JLW thanks CNPq and FAPERJ for financial support.
References
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As part of our continuing studies of the supramolecular arrangements in imines and hydrazones, we report here the structures of three isomeric nitrobenzaldehyde nitrophenyl hydrazones, (I)–(II), which we compare briefly with two further isomers, (IV) and (V) (Shan et al., 2004; Wardell et al., 2005).
In compounds (I) and (II) (Figs. 1 and 2), the molecules are disordered over two sets of sites related by a centre of inversion, selected for the sake of convenience as that at (1/2, 1/2, 1/2). The asymmetric units for (I) and (II) were selected so that the coordinates of the atoms in the nitro groups were approximately the same. This then led to close correspondence between the coordinates for atoms C11–C16 in compound (I) with those for atoms C16/C11–C12 [C11/C16/C15/C14/C13/C12?], respectively, in compound (II). Likewise, the coordinates for atoms N1, N2 and C27 in the reference asymmetric unit at (x, y, z) in compound (I) closely correspond to those in compound (II) for atoms C27, N2 and N1, respectively, at (1 − x, 1 − y, 1 − z). The unit-cell dimensions indicate that compounds (I) and (II) are isomorphous, and the atom coordinates indicate that these compounds are effectively isostructural, but with atoms N1 and C27 interchanged between (I) and (II) (Figs. 1 and 2). By contrast, all atoms in compound (III) (Fig. 3) are fully ordered in general positions. While all of the atoms in isomer (IV) are fully ordered, in isomer (V) the NH and CH sites in the central bridge are randomly scrambled, with the two heavy-atom sites each occupied by (0.5 C+0.5 N) (Wardell et al., 2005).
In each of compounds (I)–(III), the molecules are essentially planar, and all have the (E) configuration at the C═N double bond. In compound (III), the bond distances (Table 3) show strong evidence for the development of the polarized quinonoid form, (IIIa). In particular, with the C11–C16 aryl ring, the C13—C14 and C15—C16 distances are significantly shorter than the remaining distances, while C11—C12 is the longest, and the C12—N12 distance is short for its type, while the N12—O21 and N12—O22 distances are both long (Allen et al., 1987). By contrast, the C21–C26 aryl ring shows no evidence for the development of a quinonoid form. The structure of the isomer (IV), which differs from (III) by the notional reversal of the spacer fragment, has been determined both at 295 K (Shan et al., 2004) and at 120 K (Wardell et al., 2005). The same phase is present at both temperatures and both structures show evidence for the development of the polarized form, (IVa), although this was not remarked upon by Shan et al. (2004).
In each of compounds (I) and (II), there is a short intramolecular X—H···O contact (Tables 1 and 2), where X is atom C27 in (I) and atom N1 in (II). We first discuss the intermolecular hydrogen bonds on the assumption of local ordering and then consider the consequences of the disorder across inversion centres. In compound (I), the molecules are linked by the concerted action of three hydrogen bonds (Table 1): atoms N1 and C27 in the molecule at (x, y, z) both act as hydrogen-bond donors to atom O31 in the molecule at (1 + x, −1 + y, z), while atom C16 at (x, y, z) similarly acts as donor to atom O32, also at (1 + x, −1 + y, z). Hence, this multi-point interaction generates by translation a complex chain of rings running parallel to the [110] direction (Fig. 1). An entirely similar chain of rings is formed in compound (II), where atoms N1 and C27 at (x, y, z) act as donors to atom O21 at (−x, 2 − y, 1 − z), while atom C15 acts as donor to atom O22 at (1 + x, −1 + y, z) (Fig. 2). In each compound, therefore, a given molecule will form four hydrogen bonds with each of its neighbours within the [110] chain, provided only that there is local ordering within the chain in question. The multi-point recognition makes it appear probable that, within a given chain, the molecules are, in fact, ordered in this manner. Two chains of this type pass through each unit cell in (I) and (II), but there are no direction-specific interactions between adjacent chains. Accordingly, there is no necessity for the orientation of molecules in adjacent chains to show any correlation.
The supramolecular structure of compound (III), by contrast, is extremely simple. In addition to forming an intramolecular hydrogen bond (Table 4) which gives rise to an S(6) ring, the amino atom N1 in the molecule at (x, y, z) acts as hydrogen-bond donor to nitro atom O21 in the molecule at (1 − x, 1 − y, 1 − z), so forming a centrosymmetric dimer containing an S(6)R22(4)S(6) motif (Fig. 4). There are no direction-specific interactions between adjacent dimers. In particular, C—H···π(arene) hydrogen bonds and aromatic π–π stacking interactions are both absent. The supramolecular structure of compound (III) thus consists of isolated dimers.
In isomer (IV), the close analogue of (III), the molecules are linked into complex sheets by a combination of one N—H···O hydrogen bond and three independent C—H···O hydrogen bonds (Wardell et al., 2005). In the earlier report on this compound (Shan et al., 2004), the C—H···O hydrogen bonds were all overlooked; instead, those authors suggested the occurrence of π–π stacking interactions, but such interactions are, in fact, absent (Wardell et al., 2005). In the disordered isomer, (V), an extensive series of N—H···O and C—H···O hydrogen bonds generates a three-dimensional framework structure, the formation of which is independent of the disorder (Wardell et al., 2005).