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1.
2.
A polyoxometalate‐based inorganic–organic hybrid compound [CoII(2, 2′‐bpy)2]2[Mo8O26] ( 1 ) was synthesized by hydrothermal methods and structurally characterized by IR spectrum, TG analysis and X‐ray diffraction. The compound crystallizes in the monoclinic system, space group P21/n, a = 10.0681(2), b = 16.4467(2), c = 15.7838(3) Å, β = 100.046(1)°, V = 2573.52(8) Å3, Z = 2. The structure of 1 is built up from β‐[Mo8O26]4? subunits covalently linked via [CoII(2, 2′‐bpy)2]2+ fragments into a infinite 1D {[CoII(2, 2′‐bpy)2]2[Mo8O26]} polymer.  相似文献   

3.
Single crystals of HgII(H4TeVIO6) (colourless to light‐yellow, rectangular plates) and HgI2(H4TeVIO6)(H6TeVIO6)·2H2O (colourless, irregular) were grown from concentrated solutions of orthotelluric acid, H6TeO6, and respective solutions of Hg(NO3)2 and Hg2(NO3)2. The crystal structures were solved and refined from single crystal diffractometer data sets (HgII(H4TeVIO6): space group Pna21, Z = 4, a =10.5491(17), b = 6.0706(9), c = 8.0654(13)Å, 1430 structure factors, 87 parameters, R[F2 > 2σ(F2)] = 0.0180; HgI2(H4TeVIO6)(H6TeVIO6)·2H2O: space group P1¯, Z = 1, a = 5.7522(6), b = 6.8941(10), c = 8.5785(10)Å, α = 90.394(8), β = 103.532(11), γ = 93.289(8)°, 2875 structure factors, 108 parameters, R[F2 > 2σ(F2)] = 0.0184). The structure of HgII(H4TeVIO6) is composed of ribbons parallel to the b axis which are built of [H4TeO6]2— anions and Hg2+ cations held together by two short Hg—O bonds with a mean distance of 2.037Å. Interpolyhedral hydrogen bonding between neighbouring [H4TeO6]2— groups, as well as longer Hg—O bonds between Hg atoms of one ribbon to O atoms of adjacent ribbons lead, to an additional stabilization of the framework structure. HgI2(H4TeVIO6)(H6TeVIO6)·2H2O is characterized by a distorted hexagonal array made up of [H4TeO6]2— and [H6TeO6] octahedra which spread parallel to the bc plane. Interpolyhedral hydrogen bonding between both building units stabilizes this arrangement. Adjacent planes are stacked along the a axis and are connected by Hg22+ dumbbells (d(Hg—Hg) = 2.5043(4)Å) situated in‐between the planes. Additional stabilization of the three‐dimensional network is provided by extensive hydrogen bonding between interstitial water molecules and O and OH‐groups of the [H4TeO6]2— and [H6TeO6] octahedra. Upon heating HgI2(H4TeVIO6)(H6TeVIO6)·2H2O decomposes into TeO2 under formation of the intermediate phases HgII3TeVIO6 and the mixed‐valent HgIITeIV/VI2O6.  相似文献   

4.
The title complex of [Ni2(µ‐Sal)4(Dena)2]H2O, [( µ‐tetrakissalicylato‐κ‐O,O)(bis‐N,N‐diethylnicotinamide‐κ‐N)(binickel(II))]hydrate, C48H52Ni2N4O16, has been synthesized and explained as structural using some elemental analysis, FT‐IR spectra, UV‐Vis reflectance, magnetic measurements, thermal analysis and x‐ray diffraction methods. The analysis results showed that the unit cell of complex includes two molecules NiII cation, four molecules salicylates as bridge and two molecules N,N‐diethylnicotinamide ligands, also there is one molecule hydrated aqua. The compound crystallizes in the monoclinic space group P21/c with the following unit‐cell parameters: a =13.6776(6) Å, b =10.5238(3) Å, c =21.8165(9), α=90.00°, β=126.546(3)°, γ=90.00º and Z=2. The compound [Ni2(µ‐Sal)4(Dena)2]H2O is a typical paddle‐wheel complex structure. Two NiII ions are bridged by four salicylate ligands (O2, O2i, O3, O3i, O5, O5i, O6 and O6i) using a µ‐COO? coordination mode [symmetry code: (i) 1‐x, 1‐y, 1‐z]. Each NiII also coordinates to one nitrogen atom (N1 and N1i) from one N,N‐diethylnicotinamide ligand molecule in the axial position. The complex has strong paramagnetic properties.  相似文献   

5.
Contributions on the Thermal Behaviour and Crystal Chemistry of Anhydrous Phosphates. XXXIX, Syntheses, Crystal Structures and Structural Systematics of Quaternary Vanadium(IV) Oxidephosphates MIIV2O2(PO4)2 (MII: Co, Ni, Cu) By vapour‐phase assisted solid state reactions single‐crystals of the oxidephosphates α‐CoV2O2(PO4)2 (green), β‐NiV2O2(PO4)2 (yellow), and CuV2O2(PO4)2 (brown) suitable for structural investigations were grown ( α‐CoV2O2(PO4)2 : P21/c, Z = 2, a = 6.310(1), b = 7.275(1), c = 7.441(2) Å, β = 90.30(2)°, R1 = 0.044, wR2 = 0.083, 1515 independent reflections, 71 variables; β‐NiV2O2(PO4)2 : P21/c, Z = 2, a = 7.4013, b = 7.2595, c = 7.4230Å, β = 121.56°, R1 = 0.037, wR2 = 0.084, 1117 independent reflections, 61 variables; CuV2O2(PO4)2 : Pbca, Z = 8, a = 7.352(1), b = 12.652(1), c = 14.504(2) Å, R1 = 0.048, wR2 = 0.067, 2886 independent reflections, 136 variables). β‐CoV2O2(PO4)2 and α‐NiV2O2(PO4)2 were obtained as powders only. The α‐forms belong to the α‐Fe2O(PO4) structure family, while the β‐forms are isotypic to NiTi2O2(PO4)2 (Lipscombite/Lazulite structure family). The oxidephosphate structures are characterized by three‐dimensional networks of [PO4] tetrahedra and [MV2O12] groups formed by face‐sharing of [MIIO6] and [VIVO6] octahedra.  相似文献   

6.
Two new mixed‐valence iron phosphates, namely heptairon pentaphosphate hydrogen phosphate, Fe6.67(PO4)5.35(HPO4)0.65, and heptairon tetraphosphate bis(hydrogen phosphate), Fe6.23(PO4)4.45(HPO4)1.55, have been synthesized hydrothermally at 973 K and 0.1 GPa. The structures are similar to that of FeII3FeIII4(PO4)6 and are characterized by infinite chains of Fe polyhedra parallel to the [101] direction. These chains are formed by the Fe1O6 and Fe2O6 octahedra, alternating with the Fe4O5 distorted pentagonal bipyramids, according to the stacking sequence ...Fe1–Fe1–Fe4–Fe2–Fe2.... The Fe3O6 octahedra and PO4 tetrahedra connect the chains together. FeII is localized on the Fe3 and Fe4 sites, whereas FeIII is found in the Fe1 and Fe2 sites, according to bond‐valence calculations. Refined site occupancies indicate the presence of vacancies on the Fe4 site, explained by the substitution mechanism FeII + 2(PO43−) = vacancies + 2(HPO42−).  相似文献   

7.
Dark brown crystals of [NnPr4]2[TeBr6(SeBr2)2] ( 1 ) were obtained when selenium and bromine (1:1) were allowed to react in acetonitrile solution in the presence of tellurium(IV) bromide and tetrapropylammonium bromide. The salt 1 crystallizes in the monoclinic space group P21/n with the cell dimensions a = 14.7870(3) Å, b = 9.5523(3) Å, c = 16.7325(3) Å, β = 110.56(10)° (at 123(2) K). In the solid state the [TeBr6(SeBr2)2]2– anion contains a nearly regular [TeBr6] octahedron in which the four equatorial bromo ligands have developed bonds to SeII atoms of the SeBr2 molecules. The contacts between the bridging bromo and the SeII atoms of the SeBr2 molecules are 3.0000(4) and 3.0561(4) Å, and can be interpreted as bonds of the donor‐acceptor type with the bridging bromo ligands as donors and the SeBr2 molecules as acceptors. The TeIV–Br distances are in the range 2.6816(3)–2.7131(3) Å and the SeII–Br bond lengths in the coordinated SeBr2 molecules are 2.3548(4) and 2.3725(4) Å.  相似文献   

8.
The title metal–organic framework, [Cd3(C12H9O6)2(C10H8N2)2]n, has been synthesized by a solvothermal reaction. The CdII ions are located in CdO4N2 and CdO6 six‐coordinated environments, with the latter CdII ion lying on an inversion centre. The 2,4,6‐trimethylbenzene‐1,3,5‐tricarboxylate ligand (TMBTC) connects the CdII ions to form a two‐dimensional sheet incorporating hourglass‐like [Cd3(COO)6] secondary building units (SBUs). Topologically, taking the TMBTC ligand and the [Cd3(COO)6] SBU as 3‐ and 6‐connected nodes, respectively, the overall two‐dimensional sheet can be simplified to a rare (3,6)‐connected 2‐nodal kgd (Kagomé dual) net with a short Schläfli vertex notation of {43}2{46.66.83}, which further stacks into a three‐dimensional supramolecular framework through π–π stacking interactions.  相似文献   

9.
Pale rose single crystals of SrMn2(PO4)2 were obtained from a mixture of SrCl2 · 6 H2O, Mn(CH3COO)2, and (NH4)2HPO4 after thermal decomposition and finally melting at 1100 °C. The new crystal structure of strontium manganese orthophosphate [P‐1, Z = 4, a = 8.860(6) Å, b = 9.054(6) Å, c = 10.260(7) Å, α = 124.27(5)°, β = 90.23(5)°, γ = 90.26(6)°, 4220 independent reflections, R1 = 0.034, wR2 = 0.046] might be described as hexagonal close‐packing of phosphate groups. The octahedral, tetrahedral and trigonal‐bipyramidal voids within this [PO4] packing provide different positions for 8‐ and 10‐fold [SrOx] and distorted octahedral [MnO6] coordination according to a formulation Mn Mn Mn Sr (PO4)4. Single crystals of β′‐Mn3(PO4)2 (pale rose) were grown by chemical vapour transport (850 °C → 800 °C, P/I mixtures as transport agent). The unit cell of β′‐Mn3(PO4)2 [P21/c, Z = 12, a = 8.948(2) Å, b = 10.050(2) Å, c = 24.084(2) Å, β = 120.50°, 2953 independent reflections, R1 = 0.0314, wR2 = 0.095] contains 9 independent Mn2+. The reinvestigation of the crystal structure led to distinctly better agreement factors and significantly reduced standard deviations for the interatomic distances.  相似文献   

10.
Ag6(VIVO)2(PO4)2(P2O7) was obtained by reaction of Ag3PO4 and (VO)2P2O7 (sealed ampoule, 550 °C, 3 d). The crystal structure of the new mixed ortho‐pyrophosphate was determined from X‐ray single‐crystal data [Pnma, Z = 4, a = 12.759(3) Å, b = 17.340(4) Å, c = 6.418(1) Å, R1 = 0.071, wR2 = 0.184 for 3174 unique reflections with Fo > 4σ(Fo), 141 variables]. Ag+ ions are located in between layers [(VIVO)2(PO4)2(P2O7)]6–. Equilibrium relations of the new phosphate to neighboring phases were determined. The electronic structure of the (VIV≡O)2+ group was investigated by polarized electronic absorption spectroscopy (ν̃1a = 9450 cm–1, ν̃1b = 9950 cm–1, ν̃2 = 14750 cm–1), EPR spectroscopy [X‐ and Q‐band, powder and single crystal, orthorhombic crystal g‐tensor with g1 = 1.9445(3), g2 = 1.9521(3), g3 = 1.9695(3)], and magnetic measurements (powder, μexp/μB = 1.71, Θp = –1.7 K).  相似文献   

11.
A Contribution to Rhenium(II)‐, Osmium(II)‐, and Technetium(II)‐Thionitrosyl‐Complexes: Preparation, Structures, and EPR‐Spectra The reaction of [ReVINCl4] and [OsVINCl4] with S2Cl2 leads to the formation of the thionitrosyl complexes [MII(NS)Cl4] (M = Re, Os) which could not be isolated as pure compounds. Addition of pyridine to the reaction mixture results in the formation of the stable compounds trans‐(Ph4P)[OsII(NS)Cl4py], trans‐(Hpy)[OsII(NS)Cl4py], trans‐(Ph4P)[ReII(NS)Cl4py], and cis‐(Ph4P)[ReII(NS)Cl4py]. The crystal structure analyses show for trans‐(Ph4P)[OsII(NS)Cl4py] (monoclinic, P21/n, a = 12.430(3)Å, b = 18.320(4)Å, c = 15.000(3)Å, β = 114.20(3)°, Z = 4), trans‐(Hpy)[OsII(NS)Cl4py] (monoclinic, P21/n, a = 7.689(1)Å, b = 10.202(2)Å, c = 20.485(5)Å, β = 92.878(4)°, Z = 4), trans‐(Ph4P)[ReII(NS)Cl4py] (triclinic, P1¯, a = 9.331(5)Å, b = 12.068(5)Å, c = 15.411(5)Å, α = 105.25(1)°, β = 90.23(1)°, γ = 91.62(1)°, Z = 2), and cis‐(Ph4P)[ReII(NS)Cl4py] (monoclinic, P21/c, a = 10.361(1)Å, b = 16.091(2)Å, c = 17.835(2)Å, β = 90.524(2)°, Z = 4) M‐N‐S angles in the range 168‐175°. This indicates a nearly linear coordination of the NS ligand. The metal atom is octahedrally coordinated in all cases. The rhenium(II) thionitrosyl complexes (5d5 “low‐spin” configuration, S = 1/2) are studied by EPR in the temperature range 295 > T > 130 K. In addition to the detection of the complexes formed during the reaction of [ReVINCl4] with S2Cl2 EPR investigations on diamagnetically diluted powders and single crystals of the system (Ph4P)[ReII/OsII(NS)Cl4py] are reported. The 185, 187Re hyperfine parameters are used to get information about the spin‐density distribution of the unpaired electron in the complexes under study. [TcVINCl4] reacts with S2Cl2 under formation of [TcII(NS)Cl4] which is not stable and decomposes under S8 elimination and rebuilding of [TcVINCl4] as found by EPR monitoring of the reaction.  相似文献   

12.
Synthesis and Crystal Structure of Te3O3(PO4)2, a Compound with 5‐fold Coordinate Tellurium(IV) Polycrystalline Te3O3(PO4)2 is formed during controlled dehydration of (Te2O3)(HPO4) with (Te8O10)(PO4)4 as an intermediate product. Colourless single crystals were prepared by heating stoichiometric amounts of the binary oxides P2O5 und TeO2 in closed silica glass ampoules at 590 °C for 8 hours. The crystal structure (P21/c, Z = 4, α = 12.375(2), b = 7.317(1), c = 9.834(1)Å, β = 98.04(1)°, 1939 structure factors, 146 parameters, R[F2 > 2σ(F2)] = 0.0187, wR2(F2 all) = 0.0367) was determined from four‐circle diffractometer data and consists of [TeO5] polyhedra und PO4 tetrahedra as the main building units. The framework structure is made up of cationic zigzag‐chains of composition [Te2O3]2+ which extend parallel to [001] and anionic [Te(PO4)2]2— units linked laterally to these chains. This leads to the formation of [Te2O3][Te(PO4)2] layers parallel to the bc plane which are interconnected via weak Te‐O bonds.  相似文献   

13.
The reaction of [AuIII(mnt)2]? with (n‐Bu4N)[BH4] in acetone leads to the formation of [AuII(mnt)2]2?, which is the second stable mononuclear AuII complex characterized by X‐ray structure analysis. (n‐Bu4N)2[AuII(mnt)2] crystallizes triclinic, P (a = 904.24(5), b = 989.55(5), c = 1627.35(10) pm, α = 92.040(7), β = 94.937(7), γ = 107.220(6)°, Z = 1) with two molecules acetone per unit cell. The anion is planar. From EPR investigations using single crystals of (n‐Bu4N)2[AuII(mnt)2] the g tensor components were derived. Information about magnetic exchange interactions were obtained from line width analyses.  相似文献   

14.
The asymmetric unit of the title compound, dipotassium bis[hexaaquanickel(II)] tris(μ2‐methylenediphosphonato)tripalladium(II) hexahydrate, K2[Ni(H2O)6]2[Pd3{CH2(PO3)2}3]·6H2O, consists of half a {[Pd{CH2(PO3)2}]3}6− anion [one Pd atom (4e) and a methylene C atom (4e) occupy positions on a twofold axis] in a rare `handbell‐like' arrangement, with K+ and [Ni(H2O)6]2+ cations to form the neutral complex, completed by three solvent water molecules. The {[Pd{CH2(PO3)2}]3}6− units exhibit close Pd...Pd separations of 3.0469 (4) Å and are packed via intermolecular C—H...Pd hydrogen bonds. The [KO9] and [NiO6] units are assembled into sheets coplanar with (011) and stacked along the [100] direction. Within these sheets there are [K4Ni4O8] and [K2Ni2O4] loops. Successive alternation of the sheets and [Pd{CH2(PO3)2}]3 units parallel to [001] produces the three‐dimensional packing, which is also supported by a dense network of hydrogen bonds involving the solvent water molecules.  相似文献   

15.
The homoleptic complexes ZnII(4′‐(2‐(5‐R‐thienyl))‐terpyridine)2(ClO4)2 [R = hydrogen ( 1 ), bromo ( 2 ), methyl ( 3 ), and methoxy ( 4 )] were prepared. Their structures were determined by single‐crystal X‐ray diffraction analyses, and further characterized by high resolution mass, infrared spectra (IR), and elemental analyses. Single crystal X‐ray diffraction analysis showed that ZnII ions in the complexes are both six‐coordinate with N6 coordination sphere, displaying distorted octahedral arrangements. The absorption and emission spectra of the homoleptic ZnII complexes were investigated and compared to those of the parent complex ZnII(4′‐(2‐thienyl))‐terpyridine)2(ClO4)2. The UV/Vis absorption spectra showed that the complexes all exhibit strong absorption component in UV region, moreover, complex 4 has an absorption component in the visible region. Thus, the photocatalytic activities of the complexes in degradation of organic dyes were investigated under UV and visible irradiation.  相似文献   

16.
Contributions on Crystal Structures and Thermal Behaviour of Anhydrous Phosphates. XXIII. Preparation, Crystal Structure, and Thermal Behaviour of the Mercury(I) Phosphates α-(Hg2)3(PO4)2, β-(Hg2)3(PO4)2, and (Hg2)2P2O7 Light-yellow single crystals of (Hg2)2P2O7 have been obtained via chemical vapour transport in a temperature gradient (500 °C → 450 °C, 23 d) using Hg2Cl2 as transport agent. Characteristic feature of the crystal structure (P2/n, Z = 2, a = 9,186(1), b = 4,902(1), c = 9,484(1) Å, β = 98,82(2)°, 1228 independent of 5004 reflections, R(F) = 0,066 for 61 variables, 7 atoms in the asymmetric unit) are Hg22+-units with d(Hg1–Hg1) = 2,508 Å and d(Hg2–Hg2) = 2,519 Å. The dumbbells Hg22+ are coordinated by oxygen, thus forming polyhedra [(Hg12)O4] and [(Hg22)O6]. These polyhedra share some oxygen atoms. In addition they are linked by the diphosphate anion P2O74– (ecliptic conformation; ∠(P,O,P) = 129°) to built up the 3-dimensional structure. Under hydrothermal conditions (T = 400 °C) orange single crystals of the mercury(I) orthophosphates α-(Hg2)3(PO4)2 and β-(Hg2)3(PO4)2 have been obtained from (Hg2)2P2O7 and H3PO4 (c = 1%). The crystal structures of both modifications have been refined from X-ray single crystal data [α-form (β-form): P21/c (P21/n), Z = 2 (2), a = 8,576(3) (7,869(3)), b = 4,956(1) (8,059(3)), c = 15,436(3) (9,217(4)) Å, β = 128,16(3) (108,76(4))°, 1218 (1602) independent reflections of 4339 (6358) reflections, R(F) = 0,039 (0,048) for 74 (74) variables, 8 (8) atoms in the asymmetric unit]. In the structure of α-(Hg2)3(PO4)2 three crystallographically independent mercury atoms, located in two independent dumbbells, are coordinated by three oxygen atoms each. Thus, [(Hg2)O6] dimers with a strongly distorted tetrahedral coordination of all mercury atoms are formed. Such dimers are present besides [(Hg2)O5]-polyhedra in the less dense crystal structure of β-(Hg2)3(PO4)2 (d(Hg–Hg) = 2,518 Å). The mercury(I) phosphates are thermally labile and disproportionate between 200 °C (β-(Hg2)3(PO4)2) and 480 °C (α-(Hg2)3(PO4)2) to elemental mercury and the corresponding mercury(II) phosphate.  相似文献   

17.
The zinc alkoxide molecules in di‐μ3‐ethanolato‐diethyltetrakis(μ2‐2‐methyl‐4‐oxo‐4H‐pyran‐3‐olato‐κ3O3,O4:O3)tetrazinc(II), [Zn4(C2H5)2(C2H5O)2(C6H5O3)4], (I), and bis(μ3‐2‐ethoxyphenolato‐κ4O1,O2:O1:O1)bis(μ2‐2‐ethoxyphenolato‐κ3O1,O2:O1)bis(μ2‐2‐methyl‐4‐oxo‐4H‐pyran‐3‐olato‐κ3O3,O4:O3)bis(2‐methyl‐4‐oxo‐4H‐pyran‐3‐olato‐κ2O3,O4)tetrazinc(II) toluene disolvate, [Zn4(C6H5O3)4(C8H9O2)4]·2C7H8, (II), lie on crystallographic centres of inversion. The asymmetric units of (I) and (II) contain half of the tetrameric unit and additionally one molecule of toluene for (II). The ZnII atoms are four‐ and six‐coordinated in distorted tetrahedral and octahedral geometries for (I), and six‐coordinated in a distorted octahedral environment for (II). The ZnII atoms in both compounds are arranged in a defect dicubane Zn4O6 core structure composed of two EtZnO3 tetrahedra and ZnO6 octahedra for (I), and of four ZnO6 octahedra for (II), sharing common corners. The maltolate ligands exist mostly in a μ2‐bridging mode, while the guetholate ligands prefer a higher coordination mode and act as μ3‐ and μ2‐bridges.  相似文献   

18.
The electrochemical behavior of two manganese (Mn)‐substituted polyoxoanions, the dissymmetrical Dawson sandwich‐type [MnII4(H2O)2(H4AsW15O56)2]18? and the Keggin sandwich banana‐shaped [((MnIIOH2)MnII2PW9O34)2(PW6O26)]17? is investigated. At pH 5, the oxidation of the MnII‐centers results in one oxidation wave for [MnII4(H2O)2(H4AsW15O56)2]18? and two oxidation waves for [((MnIIOH2)MnII2PW9O34)2(PW6O26)]17?. To the best of our knowledge, presence of the second Mn‐based wave is rarely observed in the electrochemistry of Mn‐containing polyoxometalates. Deposition of Mn‐oxides electrocatalysts for dioxygen reduction is noticed by cyclic voltammetry, which can be distinguished by the significant positive shift in potentials of the dioxygen reduction reaction.  相似文献   

19.
The title complex, [CaCu(C5H6O4)2(H2O)2]n, is the first heterobimetallic complex based on a substituted malonate dianion. The CuII cation and two independent 2,2‐dimethylmalonate (or 2,2‐dimethylpropanedioate) dianions build up a robust dianionic [Cu(C5H6O4)2]2− complex, which acts as a building block to coordinate to four Ca2+ cations. Each CuII centre is in a four‐coordinate square plane of dimethylmalonate O atoms, while each CaII atom is in an eight‐coordinate distorted bicapped trigonal–prismatic environment of six O atoms from four different dimethylmalonate groups and two water molecules. This arrangement creates a two‐dimensional layer connectivity of the structure. The dianionic [Cu(C5H6O4)2]2− units are involved in different intermolecular hydrogen‐bonding interactions with water molecules via the formation of hydrogen‐bonded rings of graph sets R12(8) and R(6) within this layer. The crystal was nonmerohedrally twinned by rotation about [011] with a major twin volume fraction of 0.513 (3).  相似文献   

20.
The complexes [2‐(1H‐imidazol‐4‐yl‐κN3)ethylamine‐κN]bis(tri‐tert‐butoxysilanethiolato‐κS)cobalt(II), [Co(C12H27O3SSi)2(C5H9N3)], and [2‐(1H‐imidazol‐4‐yl‐κN3)ethylamine‐κN]bis(tri‐tert‐butoxysilanethiolato‐κS)zinc(II), [Zn(C12H27O3SSi)2(C5H9N3)], are isomorphous. The central ZnII/CoII ions are surrounded by two S atoms from the tri‐tert‐butoxysilanethiolate ligand and by two N atoms from the chelating histamine ligand in a distorted tetrahedral geometry, with two intramolecular N—H...O hydrogen‐bonding interactions between the histamine NH2 groups and tert‐butoxy O atoms. Molecules of the complexes are joined into dimers via two intermolecular bifurcated N—H...(S,O) hydrogen bonds. The ZnII atom in [(1H‐imidazol‐4‐yl‐κN3)methanol]bis(tri‐tert‐butoxysilanethiolato‐κ2O,S)zinc(II), [Zn(C12H27O3SSi)2(C4H6N2O)], is five‐coordinated by two O and two S atoms from the O,S‐chelating silanethiolate ligand and by one N atom from (1H‐imidazol‐4‐yl)methanol; the hydroxy group forms an intramolecular hydrogen bond with sulfur. Molecules of this complex pack as zigzag chains linked by N—H...O hydrogen bonds. These structures provide reference details for cysteine‐ and histidine‐ligated metal centers in proteins.  相似文献   

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