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1.
Cu1.45Er0.85S2: A Copper(I) Erbium(III) Sulfide with Cation‐Deficient CaAl2Si2‐Type Structure Attempts to synthesize single‐phase CuYS2‐type copper(I) erbium(III) disulfide (CuErS2) from 1 : 1 : 2‐molar mixtures of the elements (Cu, Er and S) after seven days at 900 °C in sealed evacuated silica tubes failed with equimolar amounts of CsCl working as flux and reagent. In these cases, quaternary CsCu3Er2S5 (orthorhombic, Cmcm; a = 394.82(4), b = 1410.9(1), c = 1667.2(2) pm, Z = 4) and ternary Cu1.45Er0.85S2 (trigonal, P3m1; a = 389.51(4), c = 627.14(6) pm, Z = 1) become the unexpected by‐products. Both emerge even as yellow single crystals (lath‐shaped fibres and platelets, respectively, with triangular cross‐section) and both crystal structures contain condensed [CuS4] and [ErS6] units as dominating building blocks. The ternary sulfide Cu1.45Er0.85S2 exhibits CdI2‐analogous layers {[(Er3+)(S2–)6/3]} of edge‐shared [ErS6] octahedra (d(Er–S) = 272 pm, 6 × ) which are piled up parallel (001) and interconnected by interstitial Cu+ cations in tetrahedral S2– coordination (d(Cu–S) = 236 pm, 1 × ; 240 pm, 3 × ). The latter thereby form anionic layers {([(Cu+)(S2–)4/4])2} as well, consisting of [CuS4] tetrahedra which share three cis‐oriented edges. When the S2– anions arrange hexagonally closest‐packed and the corresponding layers are symbolized with capital Roman letters, the Er3+ cations (small Roman) and the Cu+ cations (small Greek letters) reside layerwise alternatingly within half of the octahedral (Er3+) and tetrahedral (Cu+) voids according to … AcB αβ AcB αβ A … . Since both kinds of cations occupy only a certain percentage (Cu+: 72.6%, Er3+: 85.1%) of their regular positions, the crystal structure of Cu1.45Er0.85S2 can be addressed as a double cation‐deficient CaAl2Si2‐type arrangement according to (Er0.850.15)(Cu1.450.55)S2. The partial occupation could be established by both released site occupation factors in the course of the crystal structure refinement and electron beam X‐ray microanalysis (EDX).  相似文献   

2.
Single Crystals of A—type CuPrS2 and C—type Pr2S3 from Attempts to Synthesize Ternary Copper(I) Praseodymium(III) Sulfides Coarse, yellowish‐green single crystals of the ternary copper(I) praseodymium(III) sulfide CuPrS2 form within seven days at 800°C by oxidation of elemental copper and praseodymium with sulfur (molar ratio: 1:1:2) in evacuated silica tubes when equimolar quantitites of CsCl are present as flux. Attempts to synthesize CuPr3S5 or CuPr5S8 under analogous conditions always yield two‐component mixtures of CuPrS2 and Pr2S3 (C type) instead of the desired target compounds. The crystal structure of CuPrS2 (monoclinic, P21/c; a = 655.72(6), b = 722.49(6), c = 686.81(6)pm, β = 98.686(7)°; Z = 4) exhibits undulated layers {[Cu(S1)3/3(S2)1/1]3—} parallel (100) which consist of vertex‐linked pairs of two [CuS4]7— tetrahedra ([Cu2S6]10—) sharing a common edge. Their three‐dimensional cross‐linkage is achieved by Pr3+ cations in monocapped trigonal prismatic coordination of seven S2— anions each. The metal sulfur distances in the [CuS4] units cover with 233 (Cu—S2) and 236 (Cu—S1) as well as 247 (Cu—S1′) and 248pm (Cu—S1″) a rather broad interval, whereas those (Pr—S: 284—304 pm) within the [PrS7] polyhedra lie relatively closer together. According to Pr2.6770.333S4 (with Z = 4), C—Pr2S3 crystallizes in a cation‐deficient Th3P4‐type structure (cubic, I4¯3d; a = 857.68(7) pm; Z = 5.333 for Pr2S3). In conformity with the Niggli formula {PrS8/5.333} Pr3+ is surrounded trigon‐dodecahedrally by eight S2— at distances of 287 (4×) and 307pm (4×). Neither the X‐ray single‐crystal structure refinement nor electron‐beam microprobe analyses leave any evidence for the incorporation of Cu+ cations into this crystal structure.  相似文献   

3.
During attempts to synthesize lanthanoid(III) fluoride oxoselenates(IV) with the simple composition MF[SeO3], not only Pr3F[SeO3]4, but also Pr5F[SiO4]2[SeO3]3 appeared as pale green crystalline by‐products in the case of praseodymium. Pr5F[SiO4]2[SeO3]3 crystallizes triclinically in space group P$\bar{1}$ (no. 2) with a = 701.14(5), b = 982.68(7), c = 1286.79(9) pm, α = 70.552(3), β = 76.904(3), γ = 69.417(3)° and Z = 2. The five crystallographically different Pr3+ cations on the general positions 2i show coordination numbers of eight and nine. [(Pr1)O8]13– and [(Pr2)O8]13– polyhedra are connected to$\bar{1}$ {[(Pr1, 2)2O12]18–} chains along the [100] direction. [(Pr3)O7F]12–, [(Pr4)O8F]14– and [(Pr4)O8F]14– polyhedra generate [F(Pr3, 4, 5)3O19]30– units about their central F anion in triangular Pr3+ coordination. These units form $\bar{1}$ {[F(Pr3, 4, 5)3O16]24–} strands, again running parallel to [100]. Their alternating connection with the $\bar{1}$ {[(Pr1, 2)2O12]18–} chains results in $\bar{1}$ {[Pr5O20F]26–} sheets parallel to the (001) plane. Like in the already known related compound Er3F[SiO4][SeO3]2, a three‐dimensional network $\bar{1}$ {[Pr5O17F]20–} is achieved without the contribution of both the tetravalent silicon and selenium components. However, two Si4+ and three Se4+ cations forming tetrahedral [SiO4]4– and ψ1‐tetrahedral [SeO3]2– units with all O2– anions guarantee the charge balance. The formation of Pr5F[SiO4]2[SeO3]3 was observed when praseodymium sesquioxide (Pr2O3: in‐situ produced from Pr and Pr6O11 in a molar ratio of 3/11:4/11),praseodymium trifluoride (PrF3) and selenium dioxide (SeO2) in 1:1:3 molar ratios were reacted with CsBr as fluxing agent for five days at 750 °C in evacuated fused silica (SiO2) ampoules.  相似文献   

4.
Rb6LiPr11Cl16[SeO3]12: A Chloride‐Derivatized Rubidium Lithium Praseodymium(III) Oxoselenate(IV) Transparent green square platelets with often truncated edges and corners of Rb6LiPr11Cl16[SeO3]12 were obtained by the reaction of elemental praseodymium, praseodymium(III,IV) oxide and selenium dioxide with an eutectic LiCl–RbCl flux at 500 °C in evacuated silica ampoules. A single crystal of the moisture and air insensitive compound was characterized by X‐ray diffraction single‐crystal structure analysis. Rb6LiPr11Cl16[SeO3]12 crystallizes tetragonally in the space group I4/mcm (no. 140; a = 1590.58(6) pm, c = 2478.97(9) pm, c/a = 1.559; Z = 4). The crystal structure is characterized by two types of layers parallel to the (001) plane following the sequence 121′2′1. Cl? anions form cubes around the Rb+ cations (Rb1 and Rb2; CN = 8; d(Rb+?Cl?) = 331 – 366 pm) within the first layer. One quarter of the possible places for Rb+ cations within this CsCl‐type kind of arrangement is not occupied, however the Cl? anions of these vacancies are connected to Pr3+ cations (Pr4) above and below instead, forming square antiprisms of [(Pr4)O4Cl4]9? units (d(Pr4?O) = 247–249 pm; d(Pr4?Cl) = 284–297 pm) that work as links between layer 1 and 2. Central cations of the second layer consist of Li+ and Pr3+. While the Li+ cations are surrounded by eight O2? anions (d(Li?O5) = 251 pm) in the shape of cubes again, the Pr3+ cations are likewisely coordinated by eight O2? anions as square antiprisms (for Pr1, d(Pr1?O2) = 242 pm) and by ten O2? anions (for Pr2 and Pr3), respectively. The latter form tetracapped trigonal antiprisms (Pr2, d(Pr2?O) = 251–253 pm and 4 × 262 pm) or bicapped distorted cubes (Pr3, d(Pr3?O) = 245–259 pm and 2 × 279 pm). The non‐binding electron pairs (“lone pairs”) at the two crystallographically different Ψ1‐tetrahedral [SeO3]2? anions (d(Se4+?O2?) = 169–173 pm) are directing towards the empty cavities between the layer‐connecting [(Pr4)O4Cl4]9? units.  相似文献   

5.
6.
The formation of a C‐N bond via the cross‐couplings of aryl iodides with azoles, aryl amine, and amides can be successfully achieved in decent yield by the utilization of both [Cu 8(H){S2P(OiPr)2}6]+ and [Cu8{S2P(OEt)2}6]2+ as the pre‐catalysts.  相似文献   

7.
Syntheses and Crystal Structures of Novel Chalcogenido‐bridged Niobium Copper Clusters In the presence of tertiary phosphines, the reaction of NbCl5 and Copper(I) salts with Se(SiMe3)2 (E = S, Se) affords the new chalcogenido‐bridged niobium‐copper cluster compounds ( 1 ) and [NbCu4Se4Cl (PPh3)4] ( 2 ). Using E(R)SiMe3 (E = S, Se, R = Ph, nPr) instead of the bisilylated selenium species leads to the compounds [NbCu2(SPh)6(PMe3)2] ( 3 ), [NbCu2(SPh)6(PnPr3)2] ( 4 ), [NbCu2(SePh)6(PMe3)2] ( 5 ), [NbCu2(SePh)6(PnPr3)2] ( 6 ), [NbCu2(SePh)6(PiPr3)2] ( 7 ), [NbCu2(SePh)6(PtBu3)2] ( 8 ), [NbCu2(SePh)6(PiPr2Me)2] ( 9 ), [NbCu2(SePh)6(PPhEt2)2] ( 10 ), [Nb2Cu2(SnPr)8(PnPr3)2Cl2] ( 11 ) and [Nb2Cu6(SnPr)12(PiPr3)2Cl4]·2 CH3CN ( 12 ·2 CH3CN). By reacting CuI salts and NbCl5 with the monosilylated selenides Se(tBu)SiMe3 and Se(iPr)SiMe3 which have a weak Se–C bond the products [Nb2Cu6Se6(PiPr3)6Cl4] ( 13 ), [Nb2Cu4Se2(SeiPr)6(PnPr3)4Cl2] ( 14 ) and [Nb2Cu6Se2(SeiPr)10(PEt2Me)2Cl2]·DME ( 15 ) are formed which contain selenide as well as alkylselenolate ligands. The molecular structures of all of these new compounds were determined by single crystal X‐ray diffraction measurements.  相似文献   

8.
Pr(BO2)3 and PrCl(BO2)2: Two Praseodymium meta‐Borates in Comparison Single‐crystalline PrCl(BO2)2 can be obtained by the reaction of praseodymium, Pr6O11 and PrCl3 with a small excess of B2O3 in evacuated silica tubes after seven days at 850 °C. If NaCl is additionally used as flux, single crystals of Pr(BO2)3 dominate the main product. Both praseodymium(III) meta‐borates are air and water stable. The crystals of PrCl(BO2)2 emerge as long, thin, pale green needles which tend to severe twinning due to their fibrous habit. The crystal structure (triclinic, P1¯; a = 420.56(4), b = 655.42(7), c = 808.34(8) pm, α = 82.361(8), β = 89.173(9), γ = 71.980(7)°, Z = 2) exhibits zigzag chains {[(B1)ot1/1Oe2/2(B2)Ot1/1Oe2/2]2−} (≡ {[BO2]}) of corner‐linked [BO3]3− triangles with syndiotactic orientation of the terminal oxygen atoms which are running parallel to the [100] direction. The Pr3+ cations are surrounded by three Cl and seven O2− anions with the shape of a tetracapped trigonal prism. The green, transparent crystals of Pr(BO2)3 (monoclinic, C2/c; a= 984.98(9), b = 809.57(8), c = 641.02(6) pm, β = 126.783(9)°, Z = 4) appear either lath‐shaped or rather spherical. In the crystal structure the B3+ cations reside both in trigonal planar as well as in tetrahedral coordination of oxygen atoms. Both types of borate polyhedra ([BO3]3− and [BO4]5−) are linked via corners to form chains of the composition {[(B2)‐Ot1/1Oe2/2(B1)Oe4/2(B2)Ot1/1Oe2/2]3−} (≡ {[BO2]}) which run parallel [101]. The coordination sphere of the Pr3+ cations consists of ten oxide anions which build up a bicapped square antiprism.  相似文献   

9.
Pr4S3[Si2O7] and Pr3Cl3[Si2O7]: Derivatives of Praseodymium Disilicate Modified by Soft Foreign Anions For synthesizing both the disilicate derivatives Pr4S3[Si2O7] and Pr3Cl3[Si2O7], Pr, Pr6O11 and SiO2 are brought to reaction with S and PrCl3, respectively, in suitable molar ratios (850 °C, 7 d) in evacuated silica tubes. By using NaCl as a flux, Pr4S3[Si2O7] crystallizes as pale green, transparent single crystals (tetragonal, I41/amd, a = 1201.6(1), c = 1412.0(2) pm, Z = 8) with the appearance of slightly compressed octahedra. On the other hand, Pr3Cl3[Si2O7] emerges as pale green, transparent platelets and crystallizes monoclinically (space group: P21, a = 530.96(6), b = 1200.2(1), c = 783.11(8) pm, β = 109.07(1)°, Z = 2). In both crystal structures ecliptically conformed [Si2O7]6– units of two corner‐linked [SiO4] tetrahedra with Si–O–Si bridging angles of 131° in the sulfide and 148° in the chloride disilicate are present. In Pr4S3[Si2O7] both crystallographically independent Pr3+ cations show coordination numbers of 8 + 1 (5 S2– and 3 + 1 O2–) and 9 (3 S2– and 6 O2–). For Pr1, Pr2 and Pr3 in Pr3Cl3[Si2O7] coordination numbers of 10 (5 Cl and 5 O2–) and 9 (2 ×; 4 Cl and 5 O2– or 3 Cl and 6 O2–, respectively) occur.  相似文献   

10.
The title compound, {[Cu(NH3)4][Cu(CN)3]2}n, features a CuI–CuII mixed‐valence CuCN framework based on {[Cu2(CN)3]}n anionic layers and [Cu(NH3)4]2+ cations. The asymmetric unit contains two different CuI ions and one CuII ion which lies on a centre of inversion. Each CuI ion is coordinated to three cyanide ligands with a distorted trigonal–planar geometry, while the CuII ion is ligated by four ammine ligands, with a distorted square‐planar coordination geometry. The interlinkage between CuI ions and cyanide bridges produces a honeycomb‐like {[Cu2(CN)3]}n anionic layer containing 18‐membered planar [Cu(CN)]6 metallocycles. A [Cu(NH3)4]2+ cation fills each metallocyclic cavity within pairs of exactly superimposed {[Cu2(CN)3]}n anionic layers, but there are no cations between the layers of adjacent pairs, which are offset. Pairs of N—H...N hydrogen‐bonding interactions link the N—H groups of the ammine ligands to the N atoms of cyanide ligands.  相似文献   

11.
Three novel copper compounds, Rb4Cu4OCl10 ( I ), Rb[Cu3O](SeO3)2Cl ( II ), and RbCu3(OH)(SeO3)Cl4(H2O)3 ( III ) were prepared by chemical vapor transport (CVT) reactions method from mixtures of CuO, SeO2, RbCl, and CuCl2. The crystal structures of the three compounds were determined by direct methods. Compound I is a Rb analogue of ponomarevite, K4Cu4OCl10. Its crystal structure contains {[OCu4]Cl10}4– clusters with oxocentered [OCu4]6+ tetrahedra as cores. The clusters are linked by the Rb+ cations. The crystal structure of II contains complex {[O2Cu6](SeO3)4Cl2}2– layers formed by dimers of edge‐sharing [OCu4]6+ tetrahedra interlinked via selenite groups and Cl anions. The crystal structure of III is based upon {[(OH)Cu3](SeO3)}3+ layers formed by the [(OH)Cu3]5+ tetrahedra attached to (SeO3)2– groups. The layers are linked via Cl anions and via hydrogen bonds to H2O molecules.  相似文献   

12.
Pr4(SeO3)2(SeO4)F6 and NaSm(SeO3)(SeO4): Selenite‐Selenates of Rare Earth Elements Light green single crystals of Pr4(SeO3)2(SeO4)F6 have been obtained from the decomposition of Pr2(SeO4)3 in the presence of LiF in a gold ampoule. The monoclinic compound (C2/c, Z = 4, a = 2230.5(3), b = 710.54(9), c = 835.6(1) pm, β = 98.05(2)°, Rall = 0.0341) contains two crystallographically different Pr3+ ions. Pr(1)3+ is attached by six fluoride ions and two chelating SeO32– groups (CN = 10), Pr(2)3+ is surrounded by four fluoride ions, three monodentate SeO32– and two SeO42– groups. One of the latter acts as a chelating ligand, so the CN of Pr(2)3+ is 10. The selenite ions are themselves coordinated by five and the selenate ions by four Pr3+ ions. The coordination number of the F ions is three and four, respectively. The linkage of the coordination polyhedra leads to cavities in the crystal structure which incorporate the lone pairs of the selenite ions. The reaction of Sm2(SeO4)3 and NaCl in gold ampoules yielded light yellow single crystals of NaSm(SeO3)(SeO4). The monoclinic compound (P21/c, Z = 4, a = 1066.9(2), b = 691.66(8), c = 825.88(9) pm, β = 91.00(2)°, Rall = 0.0530) contains tenfold oxygen coordinated Sm3+ ions. The oxygen atoms belong to five SeO32– and two SeO42– ions. Two of the SeO32– groups as well as one of the SeO42– groups act as a chelating ligand. The sodium ions are surrounded by five SeO42– ions and one SeO32– group. One of the selenate ions is attached chelating leading to a coordination number of seven. Each selenite group is coordinated by six (5 × Sm3+ and 1 × Na+), each selenate ion by seven cations (5 × Na+ and 2 × Sm3+).  相似文献   

13.
Two Types (A and B) of Pr2Te[SiO4] Two forms of praseodymium(III) telluride ortho-silicate (Pr2Te[SiO4]) are obtained as light green, transparent single crystals (A type: bricks, B type: needles, both unsensitive to hydrolysis) from a CsCl melt by reacting Pr, TeO2 and SiO2 in stoichiometric ratios (950 °C, 10 d) in evacuated silica tubes. A-Pr2Te[SiO4] crystallizes orthorhombically (Pbcm; a = 633.70(3), b = 724.42(4), c = 1125.13(8) pm; Z = 4) with alternatingly arranged monolayers {(Pr2)Te}+ and {(Pr1)[SiO4]} parallel (001). Pr1 exhibits a coordination number of nine (6 O and 3 Te) while Pr2 has ten next neighbours (6 O and 4 Te), in which all the oxygen atoms are components of discrete ortho-silicate tetrahedra ([SiO4]4–), as also is the case in the B-type structure. The telluride anions show coordination numbers of seven (3 Pr1 and 4 Pr2). B-Pr2Te[SiO4] crystallizes monoclinically (P21/c; a = 989.90(7), b = 648.03(4), c = 870.68(6) pm, β = 94.307(8)°; Z = 4) with along [100] alternatingly sheethed double layers [{(Pr1)Te}2]2+ and [{(Pr2)[SiO4]}2]2–. This results in coordination numbers of eight (4 O and 4 Te) for Pr1, nine plus one (8 O and 1 + 1 Te) for Pr2, and five plus one (4 Pr1 and 1 + 1 Pr2) for Te. The almost 8% higher density of Pr2Te[SiO4] in the A-type structure (Dx = 6.45 g/cm3) compared to that of B-type Pr2Te[SiO4] (Dx = 5.98 g/cm3) is quite remarkable.  相似文献   

14.
During attempts to synthesize rare‐earth nitride tellurides black and bead‐shaped single crystals of the title compound sodium praseodymium(III) ditelluride (NaPrTe2) were obtained as a by‐product by reacting a mixture of praseodymium, sodium azide (NaN3) and tellurium at 900 °C for seven days in evacuated torch‐sealed silica vessels. NaPrTe2 crystallizes cubic (space group: Fd3¯m, Z = 16; a = 1285.51(9) pm, Vm = 79.96(1) cm3/mol, R1 = 0.028 for 146 unique reflections) and exhibits the Na+ and Pr3+ cations in slightly distorted octahedra of six telluride anions (d(Na—Te) = 325 pm, d(Pr—Te) = 317 pm) each. The main characteristics of this new structure type for alkali‐metal rare‐earth(III) dichalcogenides can be derived from the rock‐salt type structure (NaCl, cubic closest‐packed Te2— arrangement, all octahedral voids occupied with Na+ and Pr3+) with alternating layers consisting of Na+ and Pr3+ cations in a ratio of 3:1 and 1:3, respectively, piled along the [111] direction.  相似文献   

15.
Syntheses and Crystal Structures of Copper and Silver Complexes containing Dithiophosphinato and Trithiophosphonato Ligands The reactions of CuI and AgI salts with diphenyldithiophosphinic acid trimethylsilylester in the presence of tertiary phosphines yield the complexes [Cu(μ‐S)SPPh2(PR3)]2 (R = Me 1a , iPr 1b ), [Ag(μ‐S)SPPh2(PnPr3)]2 ( 2 ), [Ag(S2PPh2)(PEt3)]2 ( 3 ), and [Cu8(μ8‐S)(S2PPh2)6] ( 4 ). The cage complex [(PhPS3)2Cu4(PMe3)5] ( 5 ) is obtained by the reaction of phenyltrithiophosphonic acid trimethylester. All compounds were structurally characterised by X‐ray crystallography.  相似文献   

16.
Three new complexes with phosphanylphosphido ligands, [Cu4{μ2‐P(SiMe3)‐PtBu}4] ( 1 ), [Ag4{μ2‐P(SiMe3)‐PtBu2}4] ( 2 ) and [Cu{η1‐P(SiMe3)‐PiPr2}2][Li(Diglyme)2]+ ( 3 ) were synthesized and structurally characterized by X‐ray diffraction, NMR spectroscopy, and elemental analysis. Complexes 1 and 2 were obtained in the reactions of lithium derivative of diphosphane tBu2P‐P(SiMe3)Li · 2.7THF with CuCl and [iBu3PAgCl]4, respectively. The X‐ray diffraction analysis revealed that the complexes 1 and 2 present macrocyclic, tetrameric form with Cu4P4 and Ag4P4 core. Complex 3 was prepared in the reaction of CuCl with a different derivative of lithiated diphosphane iPr2P‐P(SiMe3)Li · 2(Diglyme). Surprisingly, the X‐ray analysis of 3 revealed that in this reaction instead of the tetramer the monomeric form, ionic complex [Cu{η1‐P(SiMe3)‐PiPr2}2][Li(Diglyme)2]+ was formed.  相似文献   

17.
NaPr9S2[SiO4]6: A Sulfide Silicate of Praseodymium with the Structure of Bromapatite NaPr9S2[SiO4]6 is obtained as pale green single crystals of hexagonal columnar shape from reactions of Pr, Pr6O11, S, SiO2 and NaCl (850°C, 7 d) in fused evacuated silica tubes. The crystal structure (hexagonal, P63/m, Z = 1, a = 981.05(4), c = 689.68(2) pm) corresponds with a modified bromapatite structure where orthosilicate ([SiO4]4?) and sulfide (S2?) anions provide coordination numbers of eight and nine to the two crystallographically different cations. These occupy the positions 4 f (Na+ together with Pr3+ in a molar ratio of 1:3) and 6h (Pr3+ only) to realize an average Ca5Br[PO4]3-type structure.  相似文献   

18.
Coordination Chemistry of P‐rich Phosphanes and Silylphosphanes XXI The Influence of the PR3 Ligands on Formation and Properties of the Phosphinophosphinidene Complexes [{η2tBu2P–P}Pt(PR3)2] and [{η2tBu2P1–P2}Pt(P3R3)(P4R′3)] (R3P)2PtCl2 and C2H4 yield the compounds [{η2‐C2H4}Pt(PR3)2] (PR3 = PMe3, PEt3, PPhEt2, PPh2Et, PPh2Me, PPh2iPr, PPh2tBu and P(p‐Tol)3); which react with tBu2P–P=PMetBu2 to give the phosphinophosphinidene complexes [{η2tBu2P–P}Pt(PMe3)2], [{η2tBu2P–P}Pt(PEt3)2], [{η2tBu2P–P}Pt(PPhEt2)2], [{η2tBu2P–P}Pt(PPh2Et)2], [{η2tBu2P–P}Pt(PPh2Me)2], [{η2tBu2P–P}Pt(PPh2iPr], [{η2tBu2P–P}Pt(PPh2tBu)2] and [{η2tBu2P–P}Pt(P(p‐Tol)3)2]. [{η2tBu2P–P}Pt(PPh3)2] reacts with PMe3 and PEt3 as well as with tBu2PMe, PiPr3 and P(c‐Hex)3 by substituting one PPh3 ligand to give [{η2tBu2P1–P2}Pt(P3Me3)(P4Ph3)], [{η2tBu2P1–P2}Pt(P3Ph3)(P4Me3)], [{η2tBu2P1–P2}Pt(P3Et3)(P4Ph3)], [{η2tBu2P1–P2}Pt(P3MetBu2)(P4Ph3)], [{η2tBu2P1–P2}Pt(P3iPr3)(P4Ph3)] and [{η2tBu2P1–P2}Pt(P3(c‐Hex)3)(P4Ph3)]. With tBu2PMe, [{η2tBu2P–P}Pt(P(p‐Tol)3)2] forms [{η2tBu2P1–P2}Pt(P3MetBu2)(P4(p‐Tol)3)]. The NMR data of the compounds are given and discussed with respect to the influence of the PR3 ligands.  相似文献   

19.
Syntheses and Crystal Structures of Cu and Ag Complexes with [Ta6S17]4— Ions as Ligands In the presence of phosphines saturated solutions of the thiotantalates (NEt4)4[(Ta6S17)] · 3MeCN react with copper or silver salts to give new heterobimetallic Ta—M—S clusters (M = Ag, Cu). These clusters contain the intact cluster core of the [Ta6S17]4— anion. Compounds [Cu(PMe3)4]3[(Ta6S17)Cu(PMe3)] · 2MeCN ( 1 ), (NEt4)[(Ta6S17)Ag3(PMe2iPr)6] · 5MeCN ( 2 ), [(Ta6S17)Cu4 (PMe2iPr)8] · MeCN ( 3 ), [(Ta6S17)Cu5Cl(PMe2iPr)9] · MeCN ( 4 ) and [Ta2Cu2S4Cl2(PMe2iPr)6] · 2MeCN ( 5 ) are presented herein. The structures of these compounds were elucidated by single crystal X‐ray structural analyses.  相似文献   

20.
The ionic complex [Ga{N(SPiPr2)(SePiPr2)-S, Se}2]+[GaCl4] (5) was prepared by a ligand redistribution process from the mono-chelate [Cl2Ga{N(SPiPr2)(SePiPr2)-S, Se}] (3) complex in benzene. A similar phenomenon was observed for the heavier indium homologues, where the neutral complexes [ClIn{N(SPiPr2)(SePiPr2)-S, Se}2] (7) and [ClIn{N(OPiPr2)(SPiPr2)-O, S}2] (8) were isolated along with InCl3 as the main reaction by-product. Complexes 5, 7 and 8 were characterized by single-crystal X-ray structural analysis.  相似文献   

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