research communications\(\def\hfill{\hskip 5em}\def\hfil{\hskip 3em}\def\eqno#1{\hfil {#1}}\)

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ISSN: 2056-9890

Isomorphous dinuclear copper(I) complexes bridged by 4-methyl-1H-1,2,4-triazole-5-thiol­ate ligands: chloride and bromide analogues

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aDivision of Physical Science and Center of Excellence for Innovation in Chemistry, Faculty of Science, Prince of Songkla University, Hat-Yai, Songkhla 90110, Thailand, and bMedical Science Research and Innovation Institute, Research and Development Office, Prince of Songkla University, Hat-Yai 901120, Thailand
*Correspondence e-mail: [email protected]

Edited by W. T. A. Harrison, University of Aberdeen, United Kingdom (Received 30 June 2026; accepted 22 July 2026; online 31 July 2026)

The title isomorphous copper(I) coordination complexes, bis­(μ-4-methyl-1H-1,2,4-triazole-5-thiol­ato)bis­[chlorido­(tri­phenyl­phosphane)copper(II)], [Cu2(C3H5N3S)2Cl2(C18H15P)2], and bis­(μ-4-methyl-1H-1,2,4-triazole-5-thiol­ato)bis­[bromido­(tri­phenyl­phosphane)copper(II)], [Cu2(C3H5N3S)2Br2(C18H15P)2], were synthesized from copper(I) halide salts and a mixed-ligand system containing Hmptrz and PPh3 in aceto­nitrile (Hmptrz = 4-methyl-1H-1,2,4-triazole-5-thione and PPh3 = tri­phenyl­phosphine). The asymmetric unit comprises one-half of the dinuclear complex, with each copper(I) center exhibiting a distorted tetra­hedral coordination geometry defined by one halide ion, one phospho­rus atom from PPh3, and two μ-S bridging from Hmptrz bridging mol­ecules. The two μ-S bridges [Cu—S—Cu ≃ 70.2°] connect pairs of copper(I) atoms to generate a lozenge-shaped, centrosymmetric Cu2S2 core. In the extended structure C—H⋯X (X = Cl or Br) hydrogen bonds link the dimers into a three-dimensional supra­molecular architecture. Hirshfeld surface and two-dimensional fingerprint plot analyses were also carried out to investigate and qu­antify the inter­molecular contacts governing the crystal packing.

1. Chemical context

In recent years, the development of highly efficient luminescent transition-metal complexes has attracted substantial inter­est due to their widespread applications in organic light-emitting diodes (OLEDs), photocatalysis, and chemical sensing. While noble-metal complexes based on IrIII (Kerzig et al., 2019View full citation; Pfund et al., 2020View full citation; Schreier et al., 2022View full citation) and PtII (Lai & Che, 2004View full citation; Guerchais et al., 2011View full citation; Ma et al., 2013View full citation; Zhong et al., 2013View full citation; Li et al., 2016View full citation) have historically dominated the field, their low crustal abundance and high cost limit their large-scale industrial viability. Therefore, research has shifted significantly toward earth-abundant, cost-effective first-row transition metals. Among these, CuI complexes have attracted inter­est because their closed-shell 3d10 electronic configuration suppresses metal-centered non-radiative decay pathways and supports metal–ligand charge-transfer (MLCT) transitions. However, photoexcitation may induce pseudo-Jahn–Teller distortion, resulting in a flattening of the coordination geometry and enhanced non-radiative deactivation in solution. To circumvent these geometric liabilities, research has increasingly focused on dinuclear copper(I) architectures. Utilizing bridging ligands – such as rigid multi-nitro­gen heterocycles or phosphines — secures two copper(I) centers in close spatial proximity. This structural dimerization confers several vital photophysical advantages: (i) enhanced rigidity, which effectively suppresses non-radiative Jahn–Teller distortions (Cao et al., 2026View full citation), (ii) metal–metal inter­actions, driven by the close Cu⋯Cu spatial proximity that modulates the frontier mol­ecular orbitals (Chatterjee et al., 2024View full citation) and (iii) promoted thermally activated delayed fluorescence (TADF) via minimized singlet-triplet energy splitting (Li et al., 2020View full citation; Housecroft & Constable, 2022View full citation). Motivated by these advantages, we decided to investigate the synthesis and photophysical properties of a series of copper(I) complexes featuring a mixed-ligand system composed of 4-methyl-1H-1,2,4-triazole-5-thione (C3H5N3S; Hmptrz) and tri­phenyl­phosphine (C18H15P; PPh3). In this design, the triazole-thione derivative, Hmptrz, is expected to act as a bridging ligand to link the copper(I) centers into close spatial proximity, while the bulky PPh3 co-ligands offer steric inter­ference that stabilizes the coordination sphere. This distinct mixed-ligand environment is hypothesized to enhance structural rigidity, which fundamentally optimizes the luminescent performance for multifaceted technological applications. We now report the syntheses and structures of the title compounds, [Cu2(C3H5N3S)2(C18H15P)2Cl2] (I) and [Cu2(C3H5N3S)2(C18H15P)2Br2] (II).

[Scheme 1]

2. Structural commentary

Complexes (I) and (II) are isostructural and crystallize in the triclinic space group Pī. The asymmetric unit comprises one CuI cation, a terminal halide ligand (Cl or Br), one PPh3 ligand, and one S-bridging Hmptrz mol­ecule. Crystal symmetry results in the Hmptrz mol­ecules bridging two CuI cations to form a dinuclear structure. Thus, a centrosymmetric Cu2S2 core resides about an inversion center, with each CuI center adopting a pseudo­tetra­hedral geometry. The coordination sphere of the entire mol­ecule contains a central Cu2S2 core, a pair of terminally bonded halide ions, two S-bridging Hmptrz ligands, and two terminal PPh3 ligands. Both complexes exhibit similar coordination geometries around the metal centers, best described as distorted tetra­hedral (Fig. 1[link], Tables 1[link] and 2[link]). For example, the bond angles around the copper center range from 95.874 (17)° to 115.482 (18)° for the chloro complex (I) and from 96.366 (17)° to 116.06 (2)° for the bromo complex (II). The observed Cu–halide distances are 2.3002 (5) Å for Cu1—Cl1 in (I) and 2.4284 (4) Å for Cu1—Br1 in (II). The Cu1—S1 bond lengths are 2.3245 (5) Å and 2.5781 (5) Å for (I) and 2.3268 (6) Å and 2.5501 (7) Å for (II). The Hmptrz ligand acts as a bridging motif via its S atom, linking two copper centers. The Cu2S2 core is a common structural feature in this family of complexes (Taylor et al., 1974View full citation) and adopts a distinctive lozenge geometry characterized by alternating short and long Cu⋯S bridging distances. This variation can be attributed to the orbital characteristics and electron-density distribution of the bridging sulfur atom. The S—Cu—S and Cu—S—Cu bond angles are 109.682 (15) and 70.318 (15)° for (I), and 109.762 (19) and 70.238 (19)° for (II), respectively. These angles are consistent with those commonly observed in related structures (Grifasi et al., 2015View full citation). Given that the sum of the van der Waals radii for two copper atoms is approximately 2.8 Å (Huheey et al., 1993View full citation), the observed Cu1⋯Cu1i [symmetry code: (i) 1 − x, 1 − y, 1 − z) separations of 2.8308 (5) Å for (I) and 2.8115 (6) Å for (II) indicate a minor Cu⋯Cu inter­action. This is typical for dinuclear CuI complexes with rhomboidal Cu2S2 cores, whereas the lozenge geometry generally permits only weak CuI⋯CuI (cuprophilic) inter­actions (Lobana et al., 2008View full citation, 2009View full citation). Both complexes exhibit a weak intra­molecular N—H⋯X (X = Cl, Br) hydrogen bond (Fig. 2[link], Tables 3[link] and 4[link]).

Table 1
Selected geometric parameters (Å, °) for (I)[link]

Cu1—P1 2.2324 (5) Cu1—S1 2.3245 (5)
Cu1—Cl1 2.3002 (5) Cu1—S1i 2.5781 (5)
       
P1—Cu1—Cl1 113.502 (19) Cl1—Cu1—S1i 95.874 (17)
P1—Cu1—S1 115.482 (18) S1—Cu1—S1i 109.682 (15)
Cl1—Cu1—S1 112.318 (18) Cu1—S1—Cu1i 70.318 (15)
P1—Cu1—S1i 108.064 (18)    
Symmetry code: (i) Mathematical equation.

Table 2
Selected geometric parameters (Å, °) for (II)[link]

Cu1—P1 2.2376 (6) Cu1—Br1 2.4284 (4)
Cu1—S1 2.3268 (6) Cu1—S1i 2.5501 (7)
       
P1—Cu1—S1 116.06 (2) S1—Cu1—S1i 109.762 (19)
P1—Cu1—Br1 110.271 (19) Br1—Cu1—S1i 96.366 (17)
S1—Cu1—Br1 113.182 (18) Cu1—S1—Cu1i 70.238 (19)
P1—Cu1—S1i 109.40 (2)    
Symmetry code: (i) Mathematical equation.

Table 3
Hydrogen-bond geometry (Å, °) for (I)[link]

Cg4 is the centroid of the C10–C15 ring.

D—H⋯A D—H H⋯A DA D—H⋯A
N1—H1⋯Cl1 0.83 (2) 2.33 (2) 3.1080 (18) 155.8 (19)
C2—H2⋯Cl1ii 0.93 2.79 3.439 (2) 128
C7—H7⋯Cg4iii 0.93 2.81 3.626 (4) 147
Symmetry codes: (ii) Mathematical equation; (iii) Mathematical equation.

Table 4
Hydrogen-bond geometry (Å, °) for (II)[link]

Cg4 is the centroid of the C10–C15 ring.

D—H⋯A D—H H⋯A DA D—H⋯A
N1—H1⋯Br1 0.87 (2) 2.42 (2) 3.235 (2) 156 (2)
C2—H2⋯Br1ii 0.93 2.90 3.563 (2) 130
C7—H7⋯Cg4iii 0.93 2.81 3.638 (4) 149
Symmetry codes: (ii) Mathematical equation; (iii) Mathematical equation.
[Figure 1]
Figure 1
The mol­ecular structures of the title dinuclear complexes (X: Cl or Br) with 30% displacement ellipsoids.
[Figure 2]
Figure 2
The intra­molecular inter­action, N—H⋯Cl or N—H⋯Br in (I) and (II), respectively.

3. Supra­molecular features

In the extended structures, weak C—H⋯X (X = Cl, Br) hydrogen-bonding inter­actions are observed (Tables 3[link] and 4[link]) between adjacent mol­ecules (Figs. 3[link]a and 3b). These inter­actions generate supra­molecular chains extending along the diagonal direction of the (110) plane (Fig. 3[link]). In addition, both complexes exhibit similar C—H⋯π inter­actions. For crystal-packing analysis, a commonly accepted geometrical criterion for a significant C—H⋯π inter­action is an H⋯Cg distance shorter than 3.5 Å together with a C—H⋯Cg angle greater than 110°. In both structures, the C7—H7 group inter­acts with the centroid of the phenyl ring (Cg4 is the centroid of the C10–C15 ring), with H⋯Cg distances of 2.81 Å in both (I) and (II). These inter­actions link neighbouring mol­ecules through their aromatic rings, forming supra­molecular chains propagating parallel to the a-axis direction (Fig. 4[link]). To gain further insight into the crystal packing, a Hirshfeld surface analysis (Spackman & Jayatilaka, 2009View full citation; Turner et al., 2017View full citation) was performed. The corresponding two-dimensional fingerprint plots were used to qu­antify the relative contributions of the various inter­molecular contacts to the crystal packing (Rohl et al., 2008View full citation). The percentage contributions of the individual inter­molecular contacts are presented in Fig. 5[link].

[Figure 3]
Figure 3
The inter­molecular inter­actions, (a) C—H⋯Cl for (I) and (b) C—H⋯Br for (II).
[Figure 4]
Figure 4
The C—H⋯π inter­molecular inter­actions of (a) (I) and (b) (II).
[Figure 5]
Figure 5
The two-dimensional fingerprint plots for (a) (I) and (b) (II) showing all inter­actions and those delineated into H⋯H, H⋯C/C⋯H, H⋯X/X⋯H and N ⋯H/H⋯N inter­actions (X: Cl or Br).

4. Database survey

A search of the Cambridge Structural Database (CSD, Version 5.47; Groom et al., 2016View full citation) for copper(I) halide complexes containing μ-S-bridging thione ligands and phosphine co-ligands revealed numerous dinuclear CuI complexes featuring a Cu2S2 core. Representative examples incorporating a single μ-S-bridging thione ligand include CSD refcodes FOCBII01 and FONBEP (Stergioudis et al., 1987View full citation), JADRUB (Mentzafos et al., 1989View full citation), IVEREG (Aslanidis et al., 2004View full citation), ETUCUN02, HOMYOY, MEPVIN01, HOMZAL, HOMYAK, HOMYEO and HOMYUE (Bowmaker et al., 2009bView full citation), together with WUDFUX and WUDGEI (Bowmaker et al., 2009aView full citation).

A number of closely related dinuclear CuI complexes containing μ-S-bridging thione ligands in combination with phosphine ligands have also been reported. These include JADHAX and VIPBIF (Karagiannidis et al., 1989View full citation, 1990View full citation), JITFOH (Hadjikakou et al., 1991View full citation), YEZDOW (Aslanidis et al., 1994View full citation), GADHID (Aslanidis et al., 2002View full citation), WALROR (Hadjikakou et al., 2005View full citation), CITFAN (Mamais et al., 2008View full citation), TOMFIM (Papazoglou et al., 2014View full citation), ADIGUS (Varna et al., 2016View full citation) and TEQQAK (Karasmani et al., 2018View full citation). Despite differences in the nature of the thione, phosphine and terminal halide ligands, these complexes share a common Cu2S2 core and a distorted tetra­hedral coordination geometry around the CuI centres. The title compounds therefore belong to this family of dinuclear CuI complexes and expand the structural diversity of μ-S-bridged copper(I) phosphine compounds.

5. Synthesis and crystallization

Synthesis of (I)

4-Methyl-4H-1,2,4-triazole-3-thiol (0.175 g, 1.52 mmol) was dissolved in 20 ml of aceto­nitrile and heated to 343 K. Copper(I) chloride (0.150 g, 1.52 mmol) was then added, and the reaction mixture was stirred continuously at 343 K for 3 h. Subsequently, a solution of tri­phenyl­phosphine in aceto­nitrile (10 ml) was added dropwise, and the mixture was stirred for a further 2 h at the same temperature. The reaction mixture was filtered to remove the insoluble solid. The clear filtrate was left to evaporate slowly at room temperature. After several days, colorless crystals of (I) suitable for X-ray diffraction were obtained. The crystals were separated and dried. The crystals obtained consisted of a mixture of crystalline products. Therefore, neither the isolated yield nor the elemental analysis could be determined for the target complex. Nevertheless, a suitable single crystal was selected for single-crystal X-ray diffraction analysis.

Synthesis of (II)

A mixture of copper(I) bromide (0.150 g, 1.05 mmol) and 4-methyl-4H-1,2,4-triazole-3-thiol (0.120 g, 1.04 mmol) was dissolved in 20 ml of aceto­nitrile and heated to 343 K and stirred continuously for 3 h. In a separate vessel, tri­phenyl­phosphine (0.550 g, 2.10 mmol, 2 equiv.) was dissolved in 10 ml of aceto­nitrile and added dropwise to the reaction mixture. The resulting solution was stirred at 343 K for an additional 2 h and subsequently filtered to remove any insoluble material. The clear filtrate was allowed to evaporate slowly at room temperature, affording colorless crystals of (II) after several days. The crystals were collected by filtration and dried. Yield: 0.4315 g (79.5%). m.p. 217.7–218.7 °C. Analysis calculated for C42H40Br2Cu2N6P2S2 (%): C, 48.42; H, 3.87; N, 8.07; S, 6.16. Found (%): C, 48.62; H, 3.91; N, 7.75; S, 6.55.

6. Refinement

Crystal data collection and structure refinement details are summarized in Table 5[link]. The hydrogen atoms attached to nitro­gen atoms were located from the electron-density map and refined isotropically with distance restraints for complex (II). All hydrogen atoms bonded to carbon atoms were placed in calculated idealized positions and refined using a riding model with Uiso(H) = 1.2Ueq(C).

Table 5
Experimental details

  (I) (II)
Crystal data
Chemical formula [Cu2(C3H5N3S)2Cl2(C18H15P)2] [Cu2(C3H5N3S)2Br2(C18H15P)2]
Mr 952.84 1041.76
Crystal system, space group Triclinic, PMathematical equation Triclinic, PMathematical equation
Temperature (K) 296 296
a, b, c (Å) 9.2083 (5), 9.5646 (5), 14.3564 (8) 9.2762 (5), 9.7772 (5), 14.3655 (8)
α, β, γ (°) 103.561 (1), 92.318 (1), 118.208 (1) 103.420 (1), 92.476 (1), 118.188 (1)
V3) 1066.17 (10) 1099.12 (10)
Z 1 1
Radiation type Mo Kα Mo Kα
μ (mm−1) 1.33 2.99
Crystal size (mm) 0.32 × 0.13 × 0.10 0.18 × 0.13 × 0.10
 
Data collection
Diffractometer Bruker APEX CCD area-detector Bruker APEX CCD area-detector
Absorption correction Multi-scan (SADABS; Krause et al., 2015View full citation) Multi-scan (SADABS; Krause et al., 2015View full citation)
Tmin, Tmax 0.860, 1.000 0.726, 1.000
No. of measured, independent and observed [I > 2σ(I)] reflections 15046, 5278, 4507 30282, 5290, 4690
Rint 0.021 0.026
(sin θ/λ)max−1) 0.667 0.661
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.032, 0.083, 1.03 0.031, 0.076, 1.05
No. of reflections 5278 5290
No. of parameters 258 258
No. of restraints 0 1
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
Δρmax, Δρmin (e Å−3) 0.66, −0.50 0.74, −0.53
Computer programs: SMART and SAINT (Bruker, 2003View full citation), SHELXT2018/3 (Sheldrick, 2015aView full citation), SHELXL2018/3 (Sheldrick, 2015bView full citation), Mercury (Macrae et al., 2020View full citation), WinGX (Farrugia, 2012View full citation) and publCIF (Westrip, 2010View full citation).

Supporting information


Computing details top

Bis(µ-4-methyl-1H-1,2,4-triazole-5-thiolato)bis[chlorido(triphenylphosphane)copper(II)] (I) top
Crystal data top
[Cu2(C3H5N3S)2Cl2(C18H15P)2]Z = 1
Mr = 952.84F(000) = 488
Triclinic, P1Dx = 1.484 Mg m3
a = 9.2083 (5) ÅMo Kα radiation, λ = 0.71073 Å
b = 9.5646 (5) ÅCell parameters from 5142 reflections
c = 14.3564 (8) Åθ = 2.5–28.1°
α = 103.561 (1)°µ = 1.33 mm1
β = 92.318 (1)°T = 296 K
γ = 118.208 (1)°Block, colourless
V = 1066.17 (10) Å30.32 × 0.13 × 0.10 mm
Data collection top
Bruker APEX CCD area-detector
diffractometer
4507 reflections with I > 2σ(I)
Radiation source: fine-focus sealed tubeRint = 0.021
Frames, each covering 0.3 ° in ω scansθmax = 28.3°, θmin = 1.5°
Absorption correction: multi-scan
(SADABS; Krause et al., 2015)
h = 1212
Tmin = 0.860, Tmax = 1.000k = 1212
15046 measured reflectionsl = 1919
5278 independent reflections
Refinement top
Refinement on F20 restraints
Least-squares matrix: fullHydrogen site location: mixed
R[F2 > 2σ(F2)] = 0.032H atoms treated by a mixture of independent and constrained refinement
wR(F2) = 0.083 w = 1/[σ2(Fo2) + (0.0419P)2 + 0.3004P]
where P = (Fo2 + 2Fc2)/3
S = 1.03(Δ/σ)max = 0.001
5278 reflectionsΔρmax = 0.66 e Å3
258 parametersΔρmin = 0.50 e Å3
Special details top

Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
Cu10.45470 (3)0.36495 (3)0.41651 (2)0.03899 (8)
Cl10.45147 (6)0.14000 (5)0.45015 (4)0.03800 (11)
S10.25331 (5)0.41894 (6)0.48179 (3)0.03421 (11)
P10.46539 (6)0.36199 (6)0.26103 (3)0.03079 (11)
N10.2033 (2)0.1872 (2)0.57685 (13)0.0382 (4)
N20.0905 (2)0.0875 (2)0.62506 (13)0.0457 (4)
N30.00374 (18)0.23889 (19)0.57215 (11)0.0356 (3)
C10.1536 (2)0.2784 (2)0.54386 (12)0.0302 (3)
C20.0271 (2)0.1241 (3)0.62062 (15)0.0434 (5)
H20.1227630.0769820.6476730.052*
C30.1077 (3)0.2990 (3)0.54849 (19)0.0525 (5)
H3A0.1164800.2936190.4807300.079*
H3B0.0636350.4116470.5871640.079*
H3C0.2165490.2313760.5619660.079*
C40.6647 (2)0.3853 (2)0.23112 (13)0.0361 (4)
C50.7146 (3)0.2824 (3)0.25912 (16)0.0495 (5)
H50.6454920.2049520.2890600.059*
C60.8672 (3)0.2953 (4)0.24249 (19)0.0618 (7)
H60.8993170.2251090.2602560.074*
C70.9712 (3)0.4120 (4)0.19961 (19)0.0636 (7)
H71.0737050.4208770.1888390.076*
C80.9241 (3)0.5143 (4)0.17303 (19)0.0639 (7)
H80.9949780.5926590.1441470.077*
C90.7712 (3)0.5029 (3)0.18860 (16)0.0480 (5)
H90.7404290.5737590.1705760.058*
C100.4354 (2)0.5133 (2)0.21824 (13)0.0323 (4)
C110.4370 (2)0.6428 (2)0.28772 (14)0.0384 (4)
H110.4493720.6474180.3531680.046*
C120.4203 (3)0.7650 (3)0.26076 (18)0.0529 (5)
H120.4252260.8530730.3080200.063*
C130.3965 (3)0.7558 (3)0.1645 (2)0.0617 (6)
H130.3858350.8381880.1463770.074*
C140.3881 (3)0.6251 (3)0.09386 (18)0.0602 (6)
H140.3688790.6181200.0283940.072*
C150.4082 (3)0.5046 (3)0.12038 (15)0.0452 (5)
H150.4034770.4172660.0726480.054*
C160.3106 (2)0.1657 (2)0.17376 (14)0.0365 (4)
C170.3434 (3)0.0950 (3)0.08679 (16)0.0493 (5)
H170.4500100.1457820.0714500.059*
C180.2170 (4)0.0512 (3)0.02293 (19)0.0654 (7)
H180.2385800.0977010.0355770.078*
C190.0606 (4)0.1272 (3)0.0458 (2)0.0728 (8)
H190.0233330.2258050.0030760.087*
C200.0267 (3)0.0590 (3)0.1313 (2)0.0700 (8)
H200.0804030.1104750.1459720.084*
C210.1520 (3)0.0867 (3)0.19603 (17)0.0498 (5)
H210.1293830.1315750.2546380.060*
H10.281 (3)0.173 (3)0.5592 (15)0.036 (5)*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
Cu10.05047 (15)0.04642 (15)0.03399 (13)0.03140 (12)0.01482 (10)0.01793 (10)
Cl10.0379 (2)0.0318 (2)0.0493 (3)0.02040 (18)0.00945 (19)0.01311 (19)
S10.0319 (2)0.0366 (2)0.0415 (2)0.01964 (19)0.01161 (18)0.01718 (19)
P10.0334 (2)0.0362 (2)0.0282 (2)0.02067 (19)0.00782 (17)0.01070 (18)
N10.0323 (8)0.0397 (9)0.0464 (9)0.0176 (7)0.0107 (7)0.0190 (7)
N20.0398 (9)0.0447 (9)0.0520 (10)0.0156 (8)0.0108 (7)0.0245 (8)
N30.0272 (7)0.0374 (8)0.0379 (8)0.0128 (6)0.0075 (6)0.0102 (7)
C10.0260 (8)0.0296 (8)0.0308 (8)0.0121 (7)0.0041 (6)0.0054 (7)
C20.0335 (9)0.0443 (11)0.0455 (11)0.0117 (8)0.0102 (8)0.0173 (9)
C30.0368 (10)0.0645 (14)0.0697 (15)0.0315 (10)0.0179 (10)0.0270 (12)
C40.0348 (9)0.0443 (10)0.0301 (9)0.0224 (8)0.0064 (7)0.0060 (8)
C50.0496 (12)0.0617 (13)0.0524 (13)0.0370 (11)0.0152 (10)0.0205 (11)
C60.0568 (14)0.0818 (18)0.0621 (15)0.0508 (14)0.0072 (12)0.0111 (13)
C70.0372 (11)0.0853 (19)0.0593 (15)0.0328 (12)0.0087 (10)0.0001 (13)
C80.0414 (12)0.0753 (17)0.0663 (16)0.0216 (12)0.0220 (11)0.0197 (13)
C90.0395 (10)0.0522 (12)0.0508 (12)0.0212 (9)0.0112 (9)0.0152 (10)
C100.0310 (8)0.0353 (9)0.0325 (9)0.0170 (7)0.0063 (7)0.0115 (7)
C110.0382 (9)0.0381 (10)0.0373 (10)0.0195 (8)0.0051 (8)0.0071 (8)
C120.0592 (13)0.0385 (11)0.0649 (15)0.0282 (10)0.0130 (11)0.0126 (10)
C130.0758 (16)0.0567 (14)0.0763 (17)0.0430 (13)0.0196 (13)0.0364 (13)
C140.0803 (17)0.0720 (16)0.0493 (13)0.0468 (14)0.0155 (12)0.0331 (12)
C150.0609 (13)0.0520 (12)0.0347 (10)0.0355 (11)0.0128 (9)0.0156 (9)
C160.0417 (10)0.0325 (9)0.0378 (10)0.0198 (8)0.0023 (8)0.0120 (8)
C170.0579 (13)0.0468 (12)0.0435 (11)0.0282 (10)0.0053 (10)0.0090 (9)
C180.0844 (19)0.0522 (14)0.0479 (13)0.0341 (14)0.0100 (13)0.0024 (11)
C190.0754 (18)0.0426 (13)0.0695 (18)0.0128 (13)0.0243 (15)0.0055 (12)
C200.0493 (14)0.0553 (15)0.085 (2)0.0073 (12)0.0041 (13)0.0297 (15)
C210.0443 (11)0.0475 (12)0.0548 (13)0.0187 (10)0.0059 (9)0.0194 (10)
Geometric parameters (Å, º) top
Cu1—P12.2324 (5)C7—H70.9300
Cu1—Cl12.3002 (5)C8—C91.392 (3)
Cu1—S12.3245 (5)C8—H80.9300
Cu1—S1i2.5781 (5)C9—H90.9300
Cu1—Cu1i2.8308 (5)C10—C111.390 (3)
S1—C11.7042 (18)C10—C151.393 (3)
P1—C41.8236 (18)C11—C121.385 (3)
P1—C101.8249 (18)C11—H110.9300
P1—C161.8299 (19)C12—C131.366 (4)
N1—C11.323 (2)C12—H120.9300
N1—N21.378 (2)C13—C141.380 (4)
N1—H10.83 (2)C13—H130.9300
N2—C21.289 (3)C14—C151.381 (3)
N3—C11.355 (2)C14—H140.9300
N3—C21.360 (3)C15—H150.9300
N3—C31.456 (3)C16—C211.383 (3)
C2—H20.9300C16—C171.391 (3)
C3—H3A0.9600C17—C181.388 (3)
C3—H3B0.9600C17—H170.9300
C3—H3C0.9600C18—C191.368 (4)
C4—C91.388 (3)C18—H180.9300
C4—C51.392 (3)C19—C201.370 (4)
C5—C61.387 (3)C19—H190.9300
C5—H50.9300C20—C211.387 (3)
C6—C71.379 (4)C20—H200.9300
C6—H60.9300C21—H210.9300
C7—C81.361 (4)
P1—Cu1—Cl1113.502 (19)C5—C6—H6120.0
P1—Cu1—S1115.482 (18)C8—C7—C6120.2 (2)
Cl1—Cu1—S1112.318 (18)C8—C7—H7119.9
P1—Cu1—S1i108.064 (18)C6—C7—H7119.9
Cl1—Cu1—S1i95.874 (17)C7—C8—C9120.7 (2)
S1—Cu1—S1i109.682 (15)C7—C8—H8119.6
P1—Cu1—Cu1i129.471 (18)C9—C8—H8119.6
Cl1—Cu1—Cu1i113.892 (17)C4—C9—C8119.8 (2)
S1—Cu1—Cu1i59.042 (14)C4—C9—H9120.1
S1i—Cu1—Cu1i50.639 (13)C8—C9—H9120.1
C1—S1—Cu1107.31 (6)C11—C10—C15118.44 (17)
C1—S1—Cu1i107.96 (6)C11—C10—P1117.70 (14)
Cu1—S1—Cu1i70.318 (15)C15—C10—P1123.84 (15)
C4—P1—C10106.20 (8)C12—C11—C10120.85 (19)
C4—P1—C16103.39 (9)C12—C11—H11119.6
C10—P1—C16102.43 (8)C10—C11—H11119.6
C4—P1—Cu1110.54 (6)C13—C12—C11119.8 (2)
C10—P1—Cu1118.81 (6)C13—C12—H12120.1
C16—P1—Cu1114.02 (6)C11—C12—H12120.1
C1—N1—N2113.14 (16)C12—C13—C14120.5 (2)
C1—N1—H1123.6 (15)C12—C13—H13119.8
N2—N1—H1121.7 (15)C14—C13—H13119.8
C2—N2—N1102.62 (16)C13—C14—C15120.0 (2)
C1—N3—C2106.78 (16)C13—C14—H14120.0
C1—N3—C3126.20 (17)C15—C14—H14120.0
C2—N3—C3126.87 (17)C14—C15—C10120.4 (2)
N1—C1—N3104.63 (15)C14—C15—H15119.8
N1—C1—S1129.03 (13)C10—C15—H15119.8
N3—C1—S1126.33 (14)C21—C16—C17119.12 (19)
N2—C2—N3112.83 (17)C21—C16—P1117.20 (16)
N2—C2—H2123.6C17—C16—P1123.66 (16)
N3—C2—H2123.6C18—C17—C16120.0 (2)
N3—C3—H3A109.5C18—C17—H17120.0
N3—C3—H3B109.5C16—C17—H17120.0
H3A—C3—H3B109.5C19—C18—C17120.1 (3)
N3—C3—H3C109.5C19—C18—H18119.9
H3A—C3—H3C109.5C17—C18—H18119.9
H3B—C3—H3C109.5C18—C19—C20120.5 (2)
C9—C4—C5119.14 (18)C18—C19—H19119.8
C9—C4—P1124.71 (16)C20—C19—H19119.8
C5—C4—P1116.03 (15)C19—C20—C21120.0 (3)
C6—C5—C4120.2 (2)C19—C20—H20120.0
C6—C5—H5119.9C21—C20—H20120.0
C4—C5—H5119.9C16—C21—C20120.3 (2)
C7—C6—C5120.0 (2)C16—C21—H21119.9
C7—C6—H6120.0C20—C21—H21119.9
C1—N1—N2—C20.7 (2)C4—P1—C10—C11113.94 (15)
N2—N1—C1—N30.6 (2)C16—P1—C10—C11137.94 (15)
N2—N1—C1—S1179.34 (14)Cu1—P1—C10—C1111.29 (16)
C2—N3—C1—N10.3 (2)C4—P1—C10—C1567.28 (18)
C3—N3—C1—N1176.07 (18)C16—P1—C10—C1540.84 (18)
C2—N3—C1—S1179.03 (14)Cu1—P1—C10—C15167.50 (14)
C3—N3—C1—S15.2 (3)C15—C10—C11—C123.2 (3)
Cu1—S1—C1—N118.99 (18)P1—C10—C11—C12177.95 (16)
Cu1i—S1—C1—N155.36 (18)C10—C11—C12—C132.2 (3)
Cu1—S1—C1—N3162.55 (14)C11—C12—C13—C140.3 (4)
Cu1i—S1—C1—N3123.10 (15)C12—C13—C14—C151.7 (4)
N1—N2—C2—N30.5 (2)C13—C14—C15—C100.6 (4)
C1—N3—C2—N20.2 (2)C11—C10—C15—C141.8 (3)
C3—N3—C2—N2175.6 (2)P1—C10—C15—C14179.41 (18)
C10—P1—C4—C92.9 (2)C4—P1—C16—C21160.08 (15)
C16—P1—C4—C9110.31 (18)C10—P1—C16—C2189.67 (16)
Cu1—P1—C4—C9127.27 (16)Cu1—P1—C16—C2140.01 (17)
C10—P1—C4—C5178.92 (15)C4—P1—C16—C1721.18 (19)
C16—P1—C4—C573.65 (16)C10—P1—C16—C1789.07 (18)
Cu1—P1—C4—C548.78 (17)Cu1—P1—C16—C17141.25 (15)
C9—C4—C5—C61.5 (3)C21—C16—C17—C181.1 (3)
P1—C4—C5—C6177.77 (18)P1—C16—C17—C18177.57 (17)
C4—C5—C6—C71.1 (4)C16—C17—C18—C190.8 (4)
C5—C6—C7—C80.4 (4)C17—C18—C19—C200.7 (4)
C6—C7—C8—C90.0 (4)C18—C19—C20—C211.0 (4)
C5—C4—C9—C81.1 (3)C17—C16—C21—C201.4 (3)
P1—C4—C9—C8177.08 (18)P1—C16—C21—C20177.38 (18)
C7—C8—C9—C40.4 (4)C19—C20—C21—C161.3 (4)
Symmetry code: (i) x+1, y+1, z+1.
Hydrogen-bond geometry (Å, º) top
Cg4 is the centroid of the C10–C15 ring.
D—H···AD—HH···AD···AD—H···A
N1—H1···Cl10.83 (2)2.33 (2)3.1080 (18)155.8 (19)
C2—H2···Cl1ii0.932.793.439 (2)128
C7—H7···Cg4iii0.932.813.626 (4)147
Symmetry codes: (ii) x, y, z+1; (iii) x+1, y+1, z.
Bis(µ-4-methyl-1H-1,2,4-triazole-5-thiolato)bis[bromido(triphenylphosphane)copper(II)] (II) top
Crystal data top
[Cu2(C3H5N3S)2Br2(C18H15P)2]Z = 1
Mr = 1041.76F(000) = 524
Triclinic, P1Dx = 1.574 Mg m3
a = 9.2762 (5) ÅMo Kα radiation, λ = 0.71073 Å
b = 9.7772 (5) ÅCell parameters from 4760 reflections
c = 14.3655 (8) Åθ = 2.5–27.0°
α = 103.420 (1)°µ = 2.99 mm1
β = 92.476 (1)°T = 296 K
γ = 118.188 (1)°Block, colourless
V = 1099.12 (10) Å30.18 × 0.13 × 0.10 mm
Data collection top
Bruker APEX CCD area-detector
diffractometer
4690 reflections with I > 2σ(I)
Radiation source: fine-focus sealed tubeRint = 0.026
Frames, each covering 0.3 ° in ω scansθmax = 28.0°, θmin = 1.5°
Absorption correction: multi-scan
(SADABS; Krause et al., 2015)
h = 1212
Tmin = 0.726, Tmax = 1.000k = 1212
30282 measured reflectionsl = 1818
5290 independent reflections
Refinement top
Refinement on F21 restraint
Least-squares matrix: fullHydrogen site location: mixed
R[F2 > 2σ(F2)] = 0.031H atoms treated by a mixture of independent and constrained refinement
wR(F2) = 0.076 w = 1/[σ2(Fo2) + (0.0332P)2 + 0.7926P]
where P = (Fo2 + 2Fc2)/3
S = 1.05(Δ/σ)max = 0.001
5290 reflectionsΔρmax = 0.74 e Å3
258 parametersΔρmin = 0.53 e Å3
Special details top

Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
Cu10.45873 (4)0.37211 (4)0.41591 (2)0.04068 (8)
Br10.45899 (3)0.13662 (3)0.44388 (2)0.04157 (7)
S10.25583 (7)0.41875 (7)0.48190 (4)0.03694 (12)
P10.46591 (7)0.36575 (7)0.25953 (4)0.03364 (12)
N10.2049 (3)0.1890 (3)0.57543 (16)0.0434 (4)
N20.0933 (3)0.0923 (3)0.62374 (17)0.0522 (5)
N30.0100 (2)0.2438 (2)0.57337 (14)0.0402 (4)
C10.1576 (3)0.2809 (3)0.54395 (15)0.0341 (4)
C20.0215 (3)0.1307 (3)0.62101 (19)0.0493 (6)
H20.1158060.0856860.6486950.059*
C30.0971 (3)0.3089 (4)0.5529 (3)0.0620 (8)
H3A0.1213760.2900300.4840050.093*
H3B0.0413360.4231620.5846810.093*
H3C0.1987660.2561260.5766150.093*
C40.6634 (3)0.3905 (3)0.22766 (16)0.0400 (5)
C50.7133 (4)0.2863 (4)0.2506 (2)0.0561 (7)
H50.6447630.2067140.2781930.067*
C60.8648 (4)0.3010 (5)0.2323 (2)0.0672 (8)
H60.8968270.2303810.2468860.081*
C70.9675 (4)0.4193 (4)0.1929 (2)0.0677 (9)
H71.0688410.4285320.1806020.081*
C80.9216 (4)0.5236 (4)0.1716 (2)0.0673 (8)
H80.9922370.6042630.1453000.081*
C90.7694 (3)0.5098 (4)0.1890 (2)0.0521 (6)
H90.7391350.5816300.1744120.063*
C100.4330 (3)0.5114 (3)0.21502 (16)0.0354 (4)
C110.4350 (3)0.6386 (3)0.28340 (18)0.0433 (5)
H110.4492330.6449980.3490610.052*
C120.4162 (4)0.7560 (3)0.2553 (2)0.0582 (7)
H120.4204550.8422470.3018570.070*
C130.3910 (4)0.7446 (4)0.1582 (3)0.0671 (8)
H130.3801650.8244140.1391160.081*
C140.3819 (4)0.6159 (4)0.0892 (2)0.0627 (8)
H140.3610210.6070440.0235830.075*
C150.4034 (3)0.4995 (3)0.11675 (18)0.0483 (6)
H150.3981430.4132490.0696740.058*
C160.3119 (3)0.1715 (3)0.17498 (17)0.0413 (5)
C170.3427 (4)0.1003 (3)0.0884 (2)0.0558 (7)
H170.4472840.1500320.0716030.067*
C180.2163 (5)0.0456 (4)0.0269 (2)0.0741 (10)
H180.2369500.0935640.0310090.089*
C190.0623 (5)0.1189 (4)0.0509 (3)0.0820 (12)
H190.0216600.2161110.0092020.098*
C200.0310 (4)0.0497 (4)0.1361 (3)0.0764 (10)
H200.0743230.0999340.1518970.092*
C210.1551 (3)0.0944 (3)0.1989 (2)0.0554 (7)
H210.1334950.1398420.2571660.066*
H10.286 (3)0.175 (3)0.5569 (18)0.037 (6)*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
Cu10.05287 (17)0.04652 (17)0.03529 (15)0.03174 (14)0.01301 (12)0.01691 (12)
Br10.04191 (13)0.03418 (12)0.05408 (15)0.02244 (10)0.00859 (10)0.01417 (10)
S10.0346 (3)0.0394 (3)0.0437 (3)0.0212 (2)0.0104 (2)0.0169 (2)
P10.0375 (3)0.0385 (3)0.0303 (3)0.0227 (2)0.0072 (2)0.0104 (2)
N10.0371 (10)0.0468 (11)0.0527 (12)0.0216 (9)0.0123 (9)0.0227 (9)
N20.0451 (12)0.0494 (12)0.0591 (14)0.0152 (10)0.0111 (10)0.0286 (11)
N30.0293 (9)0.0435 (11)0.0423 (11)0.0145 (8)0.0060 (8)0.0111 (9)
C10.0285 (10)0.0330 (10)0.0334 (10)0.0122 (8)0.0018 (8)0.0044 (8)
C20.0385 (12)0.0504 (14)0.0489 (14)0.0121 (11)0.0105 (10)0.0189 (11)
C30.0409 (14)0.079 (2)0.080 (2)0.0362 (14)0.0187 (13)0.0302 (17)
C40.0390 (11)0.0494 (13)0.0331 (11)0.0253 (10)0.0056 (9)0.0071 (9)
C50.0578 (16)0.0678 (18)0.0611 (17)0.0426 (15)0.0184 (13)0.0233 (14)
C60.0623 (18)0.087 (2)0.0688 (19)0.0545 (18)0.0097 (15)0.0131 (17)
C70.0437 (15)0.090 (2)0.0646 (19)0.0369 (16)0.0111 (13)0.0050 (17)
C80.0423 (15)0.078 (2)0.073 (2)0.0240 (15)0.0171 (14)0.0202 (17)
C90.0436 (13)0.0591 (16)0.0534 (15)0.0249 (12)0.0120 (11)0.0163 (13)
C100.0365 (11)0.0407 (11)0.0340 (11)0.0222 (9)0.0074 (8)0.0122 (9)
C110.0459 (13)0.0401 (12)0.0417 (12)0.0220 (11)0.0035 (10)0.0072 (10)
C120.0668 (18)0.0435 (14)0.0700 (19)0.0337 (14)0.0132 (14)0.0118 (13)
C130.081 (2)0.0636 (18)0.082 (2)0.0475 (17)0.0206 (17)0.0384 (17)
C140.084 (2)0.080 (2)0.0483 (15)0.0519 (18)0.0178 (14)0.0357 (15)
C150.0628 (16)0.0581 (15)0.0363 (12)0.0380 (13)0.0126 (11)0.0161 (11)
C160.0472 (13)0.0385 (12)0.0398 (12)0.0226 (10)0.0000 (10)0.0124 (9)
C170.0675 (18)0.0514 (15)0.0472 (14)0.0327 (14)0.0029 (13)0.0057 (12)
C180.098 (3)0.0552 (18)0.0558 (18)0.0387 (19)0.0143 (17)0.0039 (14)
C190.088 (3)0.0470 (17)0.080 (2)0.0178 (18)0.031 (2)0.0075 (17)
C200.0567 (18)0.0612 (19)0.088 (3)0.0086 (15)0.0081 (17)0.0306 (19)
C210.0486 (14)0.0540 (16)0.0600 (17)0.0205 (13)0.0048 (12)0.0223 (13)
Geometric parameters (Å, º) top
Cu1—P12.2376 (6)C7—H70.9300
Cu1—S12.3268 (6)C8—C91.393 (4)
Cu1—Br12.4284 (4)C8—H80.9300
Cu1—S1i2.5501 (7)C9—H90.9300
Cu1—Cu1i2.8115 (6)C10—C111.386 (3)
S1—C11.706 (2)C10—C151.394 (3)
P1—C41.824 (2)C11—C121.382 (4)
P1—C161.827 (2)C11—H110.9300
P1—C101.829 (2)C12—C131.374 (5)
N1—C11.323 (3)C12—H120.9300
N1—N21.374 (3)C13—C141.373 (5)
N1—H10.873 (16)C13—H130.9300
N2—C21.287 (4)C14—C151.381 (4)
N3—C11.355 (3)C14—H140.9300
N3—C21.356 (3)C15—H150.9300
N3—C31.461 (3)C16—C211.389 (4)
C2—H20.9300C16—C171.389 (4)
C3—H3A0.9600C17—C181.391 (4)
C3—H3B0.9600C17—H170.9300
C3—H3C0.9600C18—C191.366 (6)
C4—C91.379 (4)C18—H180.9300
C4—C51.396 (4)C19—C201.368 (6)
C5—C61.386 (4)C19—H190.9300
C5—H50.9300C20—C211.383 (4)
C6—C71.369 (5)C20—H200.9300
C6—H60.9300C21—H210.9300
C7—C81.363 (5)
P1—Cu1—S1116.06 (2)C5—C6—H6119.9
P1—Cu1—Br1110.271 (19)C8—C7—C6120.2 (3)
S1—Cu1—Br1113.182 (18)C8—C7—H7119.9
P1—Cu1—S1i109.40 (2)C6—C7—H7119.9
S1—Cu1—S1i109.762 (19)C7—C8—C9120.3 (3)
Br1—Cu1—S1i96.366 (17)C7—C8—H8119.9
P1—Cu1—Cu1i131.67 (2)C9—C8—H8119.9
S1—Cu1—Cu1i58.606 (18)C4—C9—C8120.5 (3)
Br1—Cu1—Cu1i115.238 (16)C4—C9—H9119.8
S1i—Cu1—Cu1i51.156 (16)C8—C9—H9119.8
C1—S1—Cu1108.45 (8)C11—C10—C15118.7 (2)
C1—S1—Cu1i107.43 (7)C11—C10—P1117.67 (17)
Cu1—S1—Cu1i70.238 (19)C15—C10—P1123.67 (18)
C4—P1—C16103.53 (11)C12—C11—C10120.9 (2)
C4—P1—C10105.42 (11)C12—C11—H11119.6
C16—P1—C10102.79 (10)C10—C11—H11119.6
C4—P1—Cu1111.26 (8)C13—C12—C11119.7 (3)
C16—P1—Cu1113.44 (8)C13—C12—H12120.1
C10—P1—Cu1118.92 (7)C11—C12—H12120.1
C1—N1—N2113.2 (2)C14—C13—C12120.2 (3)
C1—N1—H1123.6 (17)C14—C13—H13119.9
N2—N1—H1121.9 (17)C12—C13—H13119.9
C2—N2—N1102.7 (2)C13—C14—C15120.4 (3)
C1—N3—C2107.0 (2)C13—C14—H14119.8
C1—N3—C3125.8 (2)C15—C14—H14119.8
C2—N3—C3127.1 (2)C14—C15—C10120.0 (2)
N1—C1—N3104.35 (19)C14—C15—H15120.0
N1—C1—S1129.51 (17)C10—C15—H15120.0
N3—C1—S1126.13 (17)C21—C16—C17119.1 (3)
N2—C2—N3112.7 (2)C21—C16—P1117.3 (2)
N2—C2—H2123.6C17—C16—P1123.6 (2)
N3—C2—H2123.6C16—C17—C18119.7 (3)
N3—C3—H3A109.5C16—C17—H17120.1
N3—C3—H3B109.5C18—C17—H17120.1
H3A—C3—H3B109.5C19—C18—C17120.4 (3)
N3—C3—H3C109.5C19—C18—H18119.8
H3A—C3—H3C109.5C17—C18—H18119.8
H3B—C3—H3C109.5C18—C19—C20120.2 (3)
C9—C4—C5118.6 (2)C18—C19—H19119.9
C9—C4—P1124.8 (2)C20—C19—H19119.9
C5—C4—P1116.5 (2)C19—C20—C21120.4 (3)
C6—C5—C4120.2 (3)C19—C20—H20119.8
C6—C5—H5119.9C21—C20—H20119.8
C4—C5—H5119.9C20—C21—C16120.1 (3)
C7—C6—C5120.2 (3)C20—C21—H21119.9
C7—C6—H6119.9C16—C21—H21119.9
C1—N1—N2—C20.6 (3)C4—P1—C10—C11114.09 (19)
N2—N1—C1—N30.4 (3)C16—P1—C10—C11137.76 (19)
N2—N1—C1—S1179.53 (18)Cu1—P1—C10—C1111.5 (2)
C2—N3—C1—N10.0 (2)C4—P1—C10—C1567.1 (2)
C3—N3—C1—N1177.4 (2)C16—P1—C10—C1541.1 (2)
C2—N3—C1—S1179.18 (18)Cu1—P1—C10—C15167.33 (18)
C3—N3—C1—S13.5 (3)C15—C10—C11—C123.1 (4)
Cu1—S1—C1—N117.2 (2)P1—C10—C11—C12178.0 (2)
Cu1i—S1—C1—N157.3 (2)C10—C11—C12—C131.6 (4)
Cu1—S1—C1—N3163.92 (17)C11—C12—C13—C141.1 (5)
Cu1i—S1—C1—N3121.68 (18)C12—C13—C14—C152.2 (5)
N1—N2—C2—N30.6 (3)C13—C14—C15—C100.6 (5)
C1—N3—C2—N20.4 (3)C11—C10—C15—C142.0 (4)
C3—N3—C2—N2176.9 (3)P1—C10—C15—C14179.2 (2)
C16—P1—C4—C9114.6 (2)C4—P1—C16—C21160.9 (2)
C10—P1—C4—C97.0 (2)C10—P1—C16—C2189.5 (2)
Cu1—P1—C4—C9123.2 (2)Cu1—P1—C16—C2140.2 (2)
C16—P1—C4—C569.7 (2)C4—P1—C16—C1720.6 (2)
C10—P1—C4—C5177.3 (2)C10—P1—C16—C1789.0 (2)
Cu1—P1—C4—C552.5 (2)Cu1—P1—C16—C17141.3 (2)
C9—C4—C5—C61.6 (4)C21—C16—C17—C180.5 (4)
P1—C4—C5—C6177.5 (2)P1—C16—C17—C18178.0 (2)
C4—C5—C6—C70.9 (5)C16—C17—C18—C190.2 (5)
C5—C6—C7—C80.2 (5)C17—C18—C19—C200.4 (5)
C6—C7—C8—C90.5 (5)C18—C19—C20—C210.3 (5)
C5—C4—C9—C81.2 (4)C19—C20—C21—C161.1 (5)
P1—C4—C9—C8176.8 (2)C17—C16—C21—C201.2 (4)
C7—C8—C9—C40.2 (5)P1—C16—C21—C20177.5 (2)
Symmetry code: (i) x+1, y+1, z+1.
Hydrogen-bond geometry (Å, º) top
Cg4 is the centroid of the C10–C15 ring.
D—H···AD—HH···AD···AD—H···A
N1—H1···Br10.87 (2)2.42 (2)3.235 (2)156 (2)
C2—H2···Br1ii0.932.903.563 (2)130
C7—H7···Cg4iii0.932.813.638 (4)149
Symmetry codes: (ii) x, y, z+1; (iii) x+1, y+1, z.
 

Acknowledgements

Financial support by FF 68 (grant No. SCI6801309S) is gratefully acknowledged and this work was partially supported by the Faculty of Science, Prince of Songkla University (No. 364002). The authors would like to acknowledge MSc Scholarship No. PSU_GSS 2567–025) and the Medical Science Research and Innovation Institute for supporting SC-XRD data.

Funding information

Funding for this research was provided by: FF 68 (grant No. SCI6801309S); MSc (scholarship No. PSU_GSS 2567–025). This work was partially supported by the Faculty of Science, Prince of Songkla University (grant No. 364002).

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