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1.
The high‐dimensional (that is, three‐dimensional (3D)) assembly of nanomaterials is an effective means of improving their properties; however, achieving this assembly at the atomic level remains challenging. Herein, we obtained a novel nanocluster, [Au8Ag57(Dppp)4(C6H11S)32Cl2]Cl (Dppp=1,3‐bis(diphenylphosphino)propane) showing a 3D octameric assembly mode involving the kernel penetration of eight complete icosahedral Au@Ag10Au2 units for the first time. The atomically precise structure was determined by single‐crystal X‐ray diffraction, and further confirmed by thermogravimetric analysis, X‐ray photoelectron spectroscopy, and electrospray ionization mass spectrometry measurements. Furthermore, ligand‐induced transformation prompted the conversion of [Au8Ag57(Dppp)4(C6H11S)32Cl2]Cl, with complete octameric fusion into [Au8Ag55(Dppp)4(C6H11S)34][BPh4]2, with incomplete octameric fusion. These observations will hopefully facilitate further research on the assembly of M13 nanobuilding blocks.  相似文献   

2.
Preparation of trans-[Mo6Cl8]Cl4Br22? Starting from Crystalline [Mo6Cl8]Cl4(H2O)2 and Crystal Structure of [(C6H5)4As]2[Mo6Cl8]Cl4Br2 The synthesis of the title compound is successful if the crystallized [(Mo6Cl8)Cl4(H2O)2] containing the H2O molecules in trans-position reacts with HBr + [(C6H5)4As]Br in ethanol in a heterogeneous reaction. The X-ray structure investigation confirms the existence of discrete trans-Br-substituted cluster anions of composition [(Mo6Cl8)Cl4Br2]2? in the crystal. The reaction in homogeneous solutions proceeds to Br-enriched compounds. [(C6H5)4As]2[(Mo6Cl8)Cl4Br2] crystallizes in the triclinic space group P¯1 with a = 11.071(2), b = 11.418(2), c = 12.813(2) Å, α = 116.10(2), β = 95.27(2) and γ = 94.41(2)° (?133°C). The crystal structure at ?133°C was determined from single crystal X-ray diffraction data (R1 = 0.026). The [(Mo6Cl8)Cl4Br2]2?-anions are not completely ordered but distributed statistically among the three positions which are possible within the limits of the ordered [Mo6Cl8]-cores (ratio 11:5:4). The frameworks of the anions consist of Mo6 cluster units with (slightly distorted) octahedral arrangement of the metal atoms (d(Mo? Mo): 2.600(1) up to 2.614(1) Å), which are coordinated by the halogeno ligands in a square-pyramidal manner. The details of the structure will be discussed and compared with similar [(Mo6X8)Y4] cluster units (X, Y ? Cl, Br).  相似文献   

3.
Reactions of LiNPPh3 with the Cyclooctatetraenide Complexes [Ln(C8H8)Cl(THF)2]2 of Cerium and Samarium. Crystal Structures of [LiNPPh3]6, [Ln(C8H8)Li3Cl2(NPPh3)2(THF)3] (Ln = Ce, Sm) and [Li(THF)4][Sm(C8H8)2] LiNPPh3 reacts with the cyclooctatetraenide complexes [Ln(C8H8)Cl(THF)2]2 of cerium and samarium in tetrahydrofuran solution forming the phosphorane iminato complexes [Ln(C8H8)Li3Cl2(NPPh3)2(THF)3]. According to crystal structure analyses these complexes show heterocubane structures under participation of the lanthanoid metal atom, of the three Li atoms as well as of the two Cl und the two N atoms of the NPPh3 groups. The crystal structure of LiNPPh3 shows hexameric molecules with a Li6N6 polyhedron which is peripherally shielded by the phenyl groups. The structure of [Li(THF)4][Sm(C8H8)2], which has been isolated as a by-product, contains the samarium atom in a sandwichlike coordination by the two η8-C8H82– rings as it is also known from the corresponding anions with cerium and neodymium.  相似文献   

4.
Molybdenum(II) Halide Clusters with six Alcoholate Ligands: (C18H36N2O6Na)2[Mo6Cl8(OCH3)6] · 6CH3OH and (C18H36N2O6Na)2[Mo6Cl8(OC6H5)6] . The reaction of Na2[Mo6Cl8(OCH3)6] and 2,2,2-crypt yields (C18H36N2O6Na)2[Mo6Cl8(OCH3)6] · 6 CH3OH ( 1 ), which is converted to (C18H36N2O6Na)2[Mo6Cl8(OC6H5)6] ( 2 ) by metathesis with phenol. According to single crystal structure determinations ( 1 : P3 1c, a=14.613(3) Å, c=21.036(8) Å; 2 : P3 1c, a=15.624(1) Å, c=19.671(2) Å) the compounds contain anionic clusters [Mo6Cl8i(ORa)6]2? ( 1 : d(Mo—Mo) 2.608(1) Å to 2.611(1) Å, d(Mo—Cl) 2.489(1) Å to 2.503(1) Å, d(Mo—O) 2.046(4) Å; 2 : d(Mo—Mo) 2.602(3) Å to 2.608(3) Å, d(Mo—Cl) 2.471(5) Å to 2.4992(5) Å, d(Mo—O) 2.091(14) Å). Electronic interactions of the halide cluster and the phenolate ligands in [Mo6Cl8(OC6H5)6]2? is investigated by means of UV/VIS spectroscopy and EHMO calculations.  相似文献   

5.
New Phosphido-bridged Multinuclear Complexes of Ag and Zn. The Crystal Structures of [Ag3(PPh2)3(PnBu2tBu)3], [Ag4(PPh2)4(PR3)4] (PR3 = PMenPr2, PnPr3), [Ag4(PPh2)4(PEt3)4]n, [Zn4(PPh2)4Cl4(PRR′2)2] (PRR′2 = PMenPr2, PnBu3, PEt2Ph), [Zn4(PhPSiMe3)4Cl4(C4H8O)2] and [Zn4(PtBu2)4Cl4] AgCl reacts with Ph2PSiMe3 in the presence of tertiary Phosphines (PnBu2tBu, PMenPr2, PnPr3 and PEt3) to form the multinuclear complexes [Ag3(PPh2)3(PnBu2tBu)3] 1 , [Ag4(PPh2)4(PR3)4] (PR3 = PMenPr2 2 , PnPr3 3 ) and [Ag4(PPh2)4(PEt3)4]n 4 . In analogy to that ZnCl2 reacts with Ph2PSiMe3 and PRR′2 to form the multinuclear complexes [Zn4(PPh2)4Cl4(PRR′2)2] (PRR′2 = PMenPr2 5 , PnBu3 6 , PEt2Ph 7 ). Further it was possible to obtain the compounds [Zn4(PhPSiMe3)4Cl4(C4H8O)2] 8 and [Zn4(PtBu2)4Cl4] 9 by reaction of ZnCl2 with PhP(SiMe3)2 and tBu2PSiMe3, respectively. The structures were characterized by X-ray single crystal structure analysis. Crystallographic data see “Inhaltsübersicht”.  相似文献   

6.
The X-ray structural study of the reaction product of equimolar amounts of [Au3Cu2(C2Ph)6]. [{Au(C2Ph)} n ], and [Ag(C2Ph)} n ] revealed two bimetallic anionic [N(PPh3)2] + [Au3Ag2(C2Ph)6] and [N(PPh3)2]+[Au3Cu2 (C2 Pg)6] — clusters co-crystallized in one asymmetric unit. Each cluster has trigonal bipyramidal geometry with three gold atoms occupying equatorial planes and two silver or copper atoms in the apical positions. Our earlier conclusion based upon spectroscopic characterization describing the product of be above reaction as trimetallic cluster containing three coinage-metals with an overall composition [Au3CuAg(C2Ph)6], was erroneous.Presented at the 210th ACS Meeting, August 19–24, 1995, Chicago, Illinois.  相似文献   

7.
In the reactions of [Au8(PPh3)7]2+, [Au8(PPh3)8]2+ and [Au9(PPh3)8]3+ with RNC (R = isopropyl and t-butyl) in dichloromethane [Au8(PPh3)7CNR]2+ is initially, and is then converted into [Au9(PPh3)6(CNR)2]3+ via various intermediates. [Au9(PPh3)6(CNR)2]3+ reacts with I at low temperature (−78°C) in methanol to yield [Au11(PPh3)7(CNR)2I]2+, but when the reaction is carried out at room temperature Au11 (PPh3)6(CNR)I3 is formed. The cluster compounds have been characterised by elemental analysis, 31P{1H} NMR, conductivity measurements, IR and 197Au Mössbauer spectroscopy. The reactions of the clusters with amines to form carbene clusters are very slow, and the reasons for this are considered.The structure of [Au11C134H112IN2P7](PF6 was determined by X-ray diffraction. Mr = 3796.39 cubic, space group 143d, a 37.955(12) Å, V 54677.2 Å3, Z = 16, Dc = 2.21 Mg m−3, Mo-Kα radiation (graphite crystal monochromator, λ 0.71069 Å), μ(Mo-Kα) 125.2 cm−1, F(000) = 33510.3, T 293 K. Final conventional R-factor = 0.048, Rw = 0.062 ofr 1867 unique reflections and 198 variables. The Au-skeleton is the same as in Au11(PPh3)8I3 having C3v symmetry with one central and 10 peripheral Au atoms.  相似文献   

8.
Complexes [Au2Ag2(C6F5)4L2]n, where L = 1,10‐phenanthroline (phen), 2,2′‐bipyridine (bipy) or tetrahydrothiophene (tht), have been synthesized by reaction of NBu4[Au(C6F5)2] with Ag(SO3CF3), and the addition of phen or bipy thereafter, or with [Ag(SO3CF3)(tht)]. The organometallic vapochromic material [Au2Ag2(C6F5)4(phen)2]n is isolated as a powder that is able to detect volatile organic compounds such as acetone even in an aqueous solution. The colour of this vapochromic material changes from bright yellow to white in the presence of different donor solvents such as acetone, methanol or ethanol. For the practical construction of an optical fibre sensor, a sol‐gel doped with the vapochromic complex was deposited onto one end of a monomode fibre connected to a coupler. The behaviour of the material was studied at different wavelengths and concentrations of acetone vapours and acetone–water solutions. Changes were detected up to 4 dB in the reflected optical power. Copyright © 2005 John Wiley & Sons, Ltd.  相似文献   

9.
In the title compound, tetrakis­(tetra­hydro­furan)­lithium(I) tri‐μ‐phenyl­thiol­ato‐bis­[tris­(phenyl­thiol­ato)­titanate(IV)], [Li(C4H8O)4][Ti2(C6H5S)9], (I), the central structural motif of the [Ti2(SC6H5)9]? anion features a face‐sharing bi‐octa­hedron. The charge is balanced with a [Li(C4H8O)4]+ cation. The asymmetric unit contains Ti, Li and a heavily disordered tetra­hydro­furan mol­ecule on a threefold axis, and two terminal and a bridging thio­phenolate moiety and a slightly disordered tetra­hydro­furan mol­ecule on general positions.  相似文献   

10.
Heteronuclear Metal Atom Clusters of the Types X4?n[SnM(CO)4P(C6H5)3]n and M2(CO)8[μ-Sn(X)M(CO)4P(C6H5)3]2 by Reaction of SnX2 with M2(CO)8[P(C6H5)3]2 (X = Halogene; M = Mn, Re; n = 2, 3) The compounds of the both types X4?n[SnM(CO)4P(C6H5)3]n (n = 3; M = Mn; X = F, Cl, Br, I. n = 2: M = Mn, Re; X = Cl, Br, I) and M2(CO)8[μ-Sn(X)M(CO)4P(C6H5)3]2 (M = Mn; X = Cl, I. M = Re; X = Cl, Br, I) are prepared by reaction of SnX2 with M2(CO)8[P(C6H5)3]2 (M = Mn, Re). Their IR frequencies are assigned. In Re2(CO)8[μ-Sn(Cl)Re(CO)4P(C6H5)3]2 the central molecule fragment contains a planar Re2Sn2 rhombus with a transannular Re? Re bond of 316.0(2) pm. Each of the SnIV atoms is connected with the terminal ligands Cl and Re(CO)4P(C6H5)3. These ligands are in transposition with respect to the Re2Sn2 ring. The mean values for the remaining bond distances (pm) are: Sn? Re = 274.0(3); Sn? Cl = 243(1), Re? C = 176(5), Re? P = 242.4(9), C? O = 123(5). The factors with an influence on the geometrical shape of such M2Sn2 rings (M = transition metal) are discussed.  相似文献   

11.
Reaction of [Mo6Cl8]X4 with N-Bases [Mo6Cl8]X4 (X = Cl, Br, I) in ethanol solution by titration with Ag+ showed 4 labil X atoms. The displacement of X? especially by F? accelerates the titration decisively. Conductivity measurements in ethanol or acetone showed that [Mo6Cl8]X4 at 25°C behave as weak 1:1-electrolytes. Solutions of [Mo6Cl8]X4 in DMF heated up to 60°C and than lowered to 25°C showed that the compounds in this solvent behave as (potential) strong 2:1-valent electrolytes. From the following compounds the labil halides have been determined by titration with Ag+: [Mo6Cl8]X4(Py)2 (X = Cl, Br), [Mo6Cl8]X4(bipy)2 (X = Cl, Br, I), [Mo6Cl8]X4(Phenpy)2 (X = Cl, Br, I), (PyH)2[Mo6Cl8]X6 (X = Cl, Br); (bipyH)2[Mo6Cl8]I4Cl2. Always 4 (respectively 6) labil halides have been observed; exception [Mo6Cl8]Cl4(Py)2 in acetone (2 labil Cl). Lattice constants and mole volumina for the adducts with pyridin and bipyridin have been determined. The adducts with bipyridin and phenylpyridin are isotypic. Conductivity measurements have been made in different solutions. The decomposition on the thermobalance showed that in [Mo6Cl8]Cl4(Py)2 the bond of pyridin is weak. The 2 pyridin molecules are evolved at the same time. However [Mo6Cl8]I4(Bipy)2 loses 1 bipyridin only. (PyH)2[Mo6Cl8]X6 formed during the first decomposition step the novel compounds (PyH) [Mo6Cl8]X5 (X = Cl, Br). Both compounds are isotypic. They behave in ethanol solution as strong 1:1-valent electrolytes.  相似文献   

12.
Chloroselenates(IV): Synthesis, Structure, and Properties of [As(C6H5)4]2Se2Cl10 and [As(C6H5)4]Se2Cl9 The Se2Cl102? and Se2Cl9? anions were prepared, as the first dinuclear haloselenates(IV), from the reaction of (SeCl4)4 with stoichiometric quantities of chloride ions in POCl3 solutions; they were isolated as yellow crystalline As(C6H5)4+ salts. Complete X-ray structural analyses at ?130°C of [As(C6H5)4]2Se2Cl10 ( 1 ) (space group P1 , a = 10.296(7), b = 11.271(6), c = 12.375(8) Å, = 74.17(5)°, α = 81.38(5)°, β = 67.69(4)°, V = 1276 Å3) and of [As(C6H5)4]Se2Cl9 ( 2 ) (space group P21/n, a = 12.397(5), b = 17.492(6), c = 14.235(4) Å, α 93.25(3)°, V = 3082 Å3) show in both cases two distorted octahedral SeCl6 groups connected through a common edge in 1 and a common face in 2 . The terminal Se? Cl bonds (average 2.317 Å in 1 , 2.223 Å in 2 ) are much shorter than the Se? Cl bridges (av. 2.661 Å in 1 , 2.652 Å in 2 ). The stereochemical activity of the SeIV lone electron pair causes severe distortion of the central Se2Cl2 ring in the centrosymmetric Se2Cl102? ion. The vibrational spectra of the anions are reported.  相似文献   

13.
Some Reactions with [Mo6Cl8]Cl4 The reaction of [Mo6Cl8]Cl4 with different chemical agents has been investigated: The methoxylation depends on the CH3O? concentration in CH3OH. The reaction with HF leads to a partial fluorinated [Mo6Cl8] product. With NH4F (NH4)2[Mo6Cl8]F6 in formed, the hydrolysis of which leads to [Mo6Cl8]F3(OH) · 2.5 H2O. This compound can be decomposed thermically into [Mo6Cl8]O2. [Mo6Br8]F62? on hydrolysis leads to [Mo6Br8]F3(OH) · 5 H2O. With CsF Cs2[Mo6Cl8]F6 is formed, which by hydrolysis is transformed into [Mo6Cl8]F3(OH) · 2.5 H2O and possibly to [Mo6Cl8]F4 · xH2O(?). In reaction of [Mo6Cl8]Cl4 with H2SO4 one gets [Mo6Cl8](SO4)2. Salts e. g. [(C6H5)4As]2[Mo6Cl8](OC6F5)6 and adducts e. g. [Mo6Cl8](OC6F5)4 · 2 HMPA are prepared. The compounds have been characterized by X-ray powder-diagramms and by IR-spectra.  相似文献   

14.
Decreasing the core size is one of the best ways to study the evolution from AuI complexes into Au nanoclusters. Toward this goal, we successfully synthesized the [Au18(SC6H11)14] nanocluster using the [Au18(SG)14] (SG=L ‐glutathione) nanocluster as the starting material to react with cyclohexylthiol, and determined the X‐ray structure of the cyclohexylthiol‐protected [Au18(C6H11S)14] nanocluster. The [Au18(SR)14] cluster has a Au9 bi‐octahedral kernel (or inner core). This Au9 inner core is built by two octahedral Au6 cores sharing one triangular face. One transitional gold atom is found in the Au9 core, which can also be considered as part of the Au4(SR)5 staple motif. These findings offer new insight in terms of understanding the evolution from [AuI(SR)] complexes into Au nanoclusters.  相似文献   

15.
The dihydride Ru(C6Me6)[PH(C6H11)2]H2 is synthesized in high yield by reducing Ru(C6Me6)[PH(C6H11)2]Cl2 with Na[AlH2(OCH2CH2OMe)2]. In benzene it loses hydrogen under UV irradiation to give Ru(C6Me6)[PH(C6H11(2]H(C6H5).  相似文献   

16.
A well chloride?water cluster [Cl6(H2O)8]6? in the complex [Cu3(DMAP)12Cl6?8H2O] (DMAP = N,N’-dimethyl p-aminopyridine) has been investigated structurally in the solid state. The chloride-water cluster [Cl6(H2O)8]6? is stabilized and orderly arranged by hydrogen bonds which display high symmetry. Six hosts [Cu(DMAP)4]2+ cationic form a cage-like aggregation, and chloride-water [Cl6(H2O)8]6? cluster located in the cage. Cl? anion play an important role to connect cubane-like (H2O)8 water cluster forming [Cl6(H2O)8]6? cluster, and on the other hand, to connect cage-like [Cu(DMAP)4]2+ cationic aggregation by means of ionic electrostatic interaction and long-range coordinate bond interaction. The formation of such a cluster anion may be available for insight into the nature of hydration of chloride in H2O.  相似文献   

17.
Molybdenum(II) Halide Clusters with two Alcoholate Ligands: Syntheses and Crystal Structures of (C18H36N2O6Na)2[Mo6Cl12(OCH3)2] and (C18H36N2O6Na)2[Mo6Cl12(OC15H11)2] · 2C4H6O3 . Reaction of Mo6Cl12 with two equivalents of sodium methoxide in the presence of 2,2,2-crypt yields (C18H36N2O6Na)2[Mo6Cl12(OCH3)2] ( 1 ), which can be converted to (C18H36N2O6Na)2[Mo6Cl12(OC15H11)2] · 2C4H6O3 ( 2 ) by metathesis with 9-Anthracenemethanole in propylene carbonate. As confirmed by X-ray single crystal structure determination ( 1 : C2/m, a=25.513(8) Å, b=13.001(3) Å, c=10.128(3) Å, β=100.204(12)°; : C2/c, a=15.580(5) Å, b=22.337(5) Å, c=27.143(8) Å, β=98.756(10)°) the compounds contain anionic cluster units [Mo6ClCl(ORa)2]2? with two alcoholate ligands in terminal trans positions ( 1 : d(Mo—Mo) 2.597(2) Å to 2.610(2) Å, d(Mo—Cli) 2.471(3) Å to 2.493(4) Å, d(Mo—Cla) 2.417(8) Å and 2.427(8) Å, d(Mo—O) 2.006(13) Å; 2 : d(Mo—Mo) 2.599(3) Å to 2.628(3), d(Mo—Cli) 2.468(8) Å to 2.506(7) Å, d(Mo—Cla) 2.444(8) Å and 2.445(7) Å, d(Mo—O) 2.012(19) Å).  相似文献   

18.
Synthesis and Structure of the Phosphorus-bridged Transition Metal Complexes [Fe2(CO)6(PR)6] (R = tBu, iPr), [Fe2(CO)4(PiPr)6], [Fe2(CO)3Cl2(PtBu)5], [Co4(CO)10(PiPr)3], [Ni5(CO)10(PiPr)6], and [Ir4(C8H12)4Cl2(PPh)4] (PtBu)3 and (PiPr)3 react with [Fe2(CO)9] to form the dinuclear complexes [Fe2(CO)6(PR)6] (R = tBu: 1 ; iPr: 2 ). 2 is also formed besides [Fe2(CO)4(PiPr)6] ( 3 ) in the reaction of [Fe(CO)5] with (PiPr)3. When PiPr(PtBu)2 and PiPrCl2 are allowed to react with [Fe2(CO)9] it is possible to isolate [Fe2(CO)3Cl2(PtBu)5] ( 4 ). The reactions of (PiPr)3 with [Co2(CO)8] and [Ni(CO)4] lead to the tetra- and pentanuclear clusters [Co4(CO)10(PiPr)3] ( 5 ), [Ni4(CO)10(PiPr)6] [2] and [Ni5(CO)10(PiPr)6] ( 6 ). Finally the reaction of [Ir(C8H12)Cl]2 with K2(PPh)4 leads to the complex [Ir4(C8H12)4Cl2(PPh)4] ( 7 ). The structures of 1–7 were obtained by X-ray single crystal structure analysis (1: space group P21/c (Nr. 14), Z = 8, a = 1 758.8(16) pm, b = 3 625.6(18) pm, c = 1 202.7(7) pm, β = 90.07(3)°; 2 : space group P1 (Nr. 2), Z = 1, a = 880.0(2) pm, b = 932.3(3) pm, c = 1 073.7(2) pm, α = 79.07(2)°, β = 86.93(2)°, γ = 72.23(2)°; 3 : space group Pbca (Nr. 61), Z = 8, a = 952.6(8) pm, b = 1 787.6(12) pm, c = 3 697.2(30) pm; 4 : space group P21/n (Nr. 14), Z = 4, a = 968.0(4) pm, b = 3 362.5(15) pm, c = 1 051.6(3) pm, β = 109.71(2)°; 5 : space group P21/n (Nr. 14), Z = 4, a = 1 040.7(5) pm, b = 1 686.0(5) pm, c = 1 567.7(9) pm, β = 93.88(4)°; 6 : space group Pbca (Nr. 61), Z = 8, a = 1 904.1(8) pm, b = 1 959.9(8) pm, c = 2 309.7(9) pm. 7 : space group P1 (Nr. 2), Z = 2, a = 1 374.4(7) pm, b = 1 476.0(8) pm, c = 1 653.2(9) pm, α = 83.87(4)°, β = 88.76(4)°, γ = 88.28(4)°).  相似文献   

19.
Novel Gold Selenium Complexes: Syntheses and Structures of [Au10Se4(dpppe)4]Br2, [Au2Se(dppbe)], [(Au3Se)2(dppbp)3]Cl2, and [Au34Se14(tpep)6(tpepSe)2]Cl6 The reaction of gold phosphine complexes [(AuX)(PR3)] (X= halogen; R = org. group) with Se(SiMe3)2 yield to new chalcogeno bridged gold complexes. Especially within the use of polydentate phosphine ligands cluster complexes like [Au10Se4(dpppe)4]Br2 ( 1 ) (dpppe = 1, 5‐Bis(diphenylphosphino)pentane), [Au2Se(dppbe)] ( 2 ) (1, 4‐Bis(diphenylphosphino)benzene), [(Au3Se)2(dppbp)3]Cl2 ( 3 ) (dppbp = 4, 4′‐Bis‐diphenylphosphino)biphenyl) und [Au34Se14(tpep)6(tpepSe)2]Cl6 ( 4 ) (tpep = 1, 1, 1‐Tris(diphenylphosphinoethyl)phosphine, tpepSe = 1, 1‐Bis(diphenylphosphinoethyl)‐1‐(diphenylselenophosphinoethylphosphine) could be isolated and their structures could be determined by X‐ray diffraction. ( 1: Space group P1 (No. 2), Z = 2, a = 1642.1(11), b = 1713.0(9), c = 2554.0(16) pm, α = 80.41(3)°, β = 76.80(4)°, γ = 80.92(4)°; 2: Space group P21/n (No. 14), Z = 4, a = 947.3(2), b = 1494.9(3), c = 2179.6(7) pm, β = 99.99(3)°; 3: Space group P21/c (No. 14), Z = 8, a = 2939.9(6), b = 3068.4(6), c = 3114.5(6) pm, β = 109.64(3)°; 4: Space group P1 (No. 2), Z = 1, a = 2013.7(4), b = 2420.6(5), c = 2462.5(5) pm, α = 77.20(3), β = 74.92(3), γ = 87.80(3)°).  相似文献   

20.
Crystal Structure of Tetraphenylphosphonium Monothiocyanatohydro-closo-Decaborate, [P(C6H5)4]2[2-(SCN)B10H9] · CH3CN The X-ray structure determination of [P(C6H5)4]2[2-(SCN)B10H9] · CH3CN (monoclinic, space group P21/n, a = 10.6040(10), b = 13.8880(9), c = 33.888(3) Å, β = 94.095(8)°, Z = 4) reveals the S coordination of the SCN substituent with a B? S distance of 1.913(6) Å and a B? S? C angle of 105.3(3)°. The SCN group is nearly linear (178.2(7)°).  相似文献   

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