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1.
The divinyldiarsene radical cations [{(NHC)C(Ph)}As]2(GaCl4) (NHC=IPr: C{(NDipp)CH}2 3 ; SIPr: C{(NDipp)CH2}2 4 ; Dipp=2,6‐iPr2C6H3) and dications [{(NHC)C(Ph)}As]2(GaCl4)2 (NHC=IPr 5 ; SIPr 6 ) are readily accessible as crystalline solids on sequential one‐electron oxidation of the corresponding divinyldiarsenes [{(NHC)C(Ph)}As]2 (NHC=IPr 1 ; SIPr 2 ) with GaCl3. Compounds 3 – 6 have been characterized by X‐ray diffraction, cyclic voltammetry, EPR/NMR spectroscopy, and UV/vis absorption spectroscopy as well as DFT calculations. The sequential removal of one electron from the HOMO, that is mainly the As?As π‐bond, of 1 and 2 leads to successive elongation of the As=As bond and contraction of the C?As bonds from 1 / 2 → 3 / 4 → 5 / 6 . The UV/vis spectrum of 3 and 4 each exhibits a strong absorption in the visible region associated with SOMO‐related transitions. The EPR spectrum of 3 and 4 each shows a broadened septet owing to coupling of the unpaired electron with two 75As (I=3/2) nuclei.  相似文献   

2.
The first divinyldiarsenes [{(NHC)C(Ph)}As]2 (NHC=IPr 3 a , SIPr 3 b ; IPr=C{(NAr)CH}2; SIPr=C{(NAr)CH2}2; Ar=2,6-iPr2C6H3) are reported. Compounds 3 a and 3 b were prepared by the reduction of corresponding chlorides {(NHC)C(Ph)}AsCl2 (NHC=IPr 2 a , SIPr 2 b ) with Mg. Calculations revealed a small HOMO–LUMO energy gap of 3.86 ( 3 a ) and 4.24 eV ( 3 b ). Treatment of 3 a with (Me2S)AuCl led to the cleavage of the As=As bond to restore 2 a , which is expected to proceed via the diarsane [{(IPr)C(Ph)}AsCl]2 ( 4 ). Remarkably, 4 as well as 2 a can be selectively accessed on treatment of 3 a with an appropriate amount of C2Cl6. Moreover, 3 a readily reacts with PhEEPh (E=Se or Te) at room temperature to give {(IPr)C(Ph)}As(EPh)2 (E=Se 5 a ; Te 5 b ), revealing the cleavage of As=As and E−E bonds and the formation of As−E bonds. Such highly selective stepwise oxidation ( 3 a → 4 → 2 a ) and bond metathesis ( 3 a → 5 a , b ) reactions are unprecedented in main-group chemistry.  相似文献   

3.
The olefinic C−H bond functionalization of (NHC)CHPh (NHC=IPr=C{(NAr)CH}2 1 ; SIPr=C{(NAr)CH2}2 2 ; Ar=2,6-iPr2C6H3), derived from classical N-heterocyclic carbenes (NHCs), with PCl3 affords the dichlorovinylphosphanes {(NHC)C(Ph)}PCl2 (NHC=IPr 3 , SIPr 4 ). Two-electron reduction of 3 and 4 with magnesium leads to the formation of the divinyldiphosphenes [{(NHC)C(Ph)}P]2 (NHC=IPr 5 , SIPr 6 ) as crystalline solids. Unlike literature-known diphosphenes, which are mostly yellow or orange, 5 is a green whereas 6 is a purple solid. Although the P=P bond lengths of 5 (2.062(1)) and 6 (2.055(1) Å) are comparable to those of the known diphosphenes (2.02–2.08 Å), the C−P bond lengths of 5 (1.785(1)) and 6 (1.797(1) Å) are, however, considerably shorter than a C −P single bond length (1.85 Å), indicating a considerable π-conjugation between C=C and P=P moieties. The HOMO–LUMO energy gap for 5 (4.15) and 6 (4.52 eV) is strikingly small and thus the narrowest among the diphosphenes (>4.93 eV) reported as yet. Consequently, 5 readily undergoes P=P bond cleavage at room temperature on treatment with sulfur to form the unique dithiophosphorane {(IPr)C(Ph)}P(S)2 7 . Interestingly, reaction of 5 with selenium gives the selenadiphosphirane [{(IPr)C(Ph)}P]2Se 8 with an intact P−P bond.  相似文献   

4.
Synthesis and Spectroscopic Characterisation of some Pentacarbonyltungsten(0) Complexes with Mono‐ and Bicyclic Phosphirane Ligands: Crystal Structure of [{(Me3Si)2HCPC(H)H–C(H)Ph}W(CO)5] The tungsten(0) complex [{(Me3Si)2HCPC(Ph)=N}W(CO)5] ( 1 ) reacts upon heating with alkene derivatives 2 , 6 , 8 , and 10 in toluene to form benzonitrile and the complexes [{(Me3Si)2HCPC(R1,R2)–C(R3,R4}W(CO)5] ( 4 , 7 a , b , 9 a , b , 11 a , b ) ( 4 (trans): R1,R3 = Ph, R2,R4 = H, 7 a , b (cis, meso and rac): R1,R3 = Ph, R2,R4 = H, 9 a , b (RR und SS): R1 = Ph, R2,R3,R4 = H, 11 a , b : R1=R3 = (CH2)4, R2,R4 = H). Spectroscopic and mass spectrometric data are discussed. The structure of the complex 9 a was determined by X‐ray single crystal structure analysis showing characteristic data for the phosphirane ring such as a narrow angle at phosphorus (49,2(2)°), different P–C distances (P–C(6) 182,1(5) and P–C(7) 185,2(4) pm) and 152,9(6) pm for the basal C–C bond.  相似文献   

5.
Bifunctionalized 1 H‐Phosphirene and g1‐1‐Phosphaallene Tungsten Complexes The tungsten(0) complex [{(Me3Si)2HCPC(Ph)=N}W(CO)5] 1 reacts upon heating with acetylene derivatives 2 a–d in toluene to form benzonitrile and the complexes [{(Me3Si)2HCPC(R)=COEt} · W(CO)5] 5 a–d ( 5 a : R = SiMe3; 5 b : R = SiPh3; 5 c : R = SnMe3; 5 d : R = SnPh3) and [{(Me3Si)2HCP=C=C(OEt)R} · W(CO)5] 6 a, b ( 6 a : R = SnMe3; 6 b : R = SnPh3), which have been isolated by chromatography; complexes 5 c and 6 a have been characterized as mixtures. Spectroscopic and mass spectrometric data are discussed. The crystal structure of the compound 5 a was determined by X‐ray single crystal structure analysis ( 5 a : space group P21/n, Z = 4, a = 977.6(2) pm, b = 1814.6(4) pm, c = 1628.0(4) pm, β = 93.95(2)°).  相似文献   

6.
Syntheses and Structures of η1‐Phosphaallyl, η1‐Arsaallyl, and η1‐Stibaallyl Iron Complexes [(η5‐C5Me5)(CO)2Fe–E(SiMe3)C(OSiMe3)=CPh2] (E = P, As, Sb) The reaction of equimolar amounts of [(η5‐C5Me5)(CO)2Fe–E(SiMe3)2] ( 1 a : E = P; 1 b : As; 1 c : Sb) and diphenylketene afforded the η1‐phosphaallyl‐, η1‐arsaallyl‐, and η1‐stibaallyl complexes [(η5‐C5Me5)(CO)2Fe–E(SiMe3)C(OSiMe3)=CPh2] ( 2 a : E = P; 2 b : As; 2 c : Sb). The molecular structures of 2 b and 2 c were elucidated by single crystal X‐ray analyses.  相似文献   

7.
The lithium salts of anionic N-heterocyclic thiones and selones [{(WCA-IDipp)E}Li(toluene)] ( 1 : E=S; 2 : E=Se; WCA=B(C6F5)3, IDipp=1,3-bis(2,6-diisopropylphenyl)imidazolin-2-ylidene), which contain a weakly coordinating anionic (WCA) borate moiety in the imidazole backbone were reacted with Me3SiCl, to furnish the silylated adducts (WCA-IDipp)ESiMe3 ( 3 : E=S; 4 : E=Se). The reaction of the latter with [(η5-C5Me5)MCl2]2 (M=Rh, Ir) afforded the rhodium(III) and iridium(III) half-sandwich complexes [{(WCA-IDipp)E}MCl(η5-C5Me5)] ( 5 – 8 ). The direct reaction of the lithium salts 1 and 2 with a half or a full equivalent of [M(COD)Cl]2 (M=Rh, Ir) afforded the monometallic complexes [{(WCA-IDipp)E}M(COD)] ( 9 – 12 ) or the bimetallic complexes [μ2-{(WCA-IDipp)E}M2(COD)2(μ2-Cl)] ( 13 – 16 ), respectively. The bonding situation in these complexes has been investigated by means of density functional theory (DFT) calculations, revealing thiolate or selenolate ligand character with negligible metal-chalcogen π-interaction.  相似文献   

8.
9.
Synthesis, Structure, and Reactivity of the Ferrioarsaalkene [(η5‐C5Me5)(CO)2FeAs=C(Ph)NMe2] Reaction of equimolar amounts of the carbenium iodide [Me2N(Ph)CSMe]I and LiAs(SiMe3)2 · 1.5 THF afforded the thermolabile arsaalkene Me3SiAs = C(Ph)NMe2 ( 1 ), which in situ was converted into the black crystalline ferrioarsaalkene [(η5‐C5Me5)(CO)2FeAs=C(Ph)NMe2)] ( 2 ) by treatment with [(η5‐C5Me5)(CO)2FeCl]. Compound 2 was protonated by ethereal HBF4 to yield [(η5‐C5Me5)(CO)2FeAs(H)C(Ph)NMe2]BF4 ( 3 ) and methylated by CF3SO3Me to give [(η5‐C5Me5)(CO)2FeAs(Me)C(Ph)NMe2]‐ SO3CF3 ( 4 ). [(η5‐C5Me5)(CO)2FeAs[M(CO)n]C(Ph)NMe2] ( 5 : [M(CO)n] = [Fe(CO)4]; 6 : [Cr(CO)5]) were isolated from the reaction of 2 with [Fe2(CO)9] or [{(Z)‐cyclooctene}Cr(CO)5], respectively. Compounds 2 – 6 were characterized by means of elemental analyses and spectroscopy (IR, 1H, 13C{1H}‐NMR). The molecular structure of 2 was determined by X‐ray diffraction analysis.  相似文献   

10.
Various di- and poly-nuclear transition metal complexes have been investigated as catalysts for the metal carbonyl substitution reaction. The complexes [{(η5-C5H4R)Fe(CO)2} 2] (R = H, Me, CO2Me, OMe, O(CH2)4OH) and [{(η5-C5H5)-Ru(CO)2} 2] are active catalysts for a range of substitution reactions including the probe reaction [Fe(CO)4(CNBut)] + ButNC → [Fe(CO)3(CNBut)2] + CO. [{(η5-C5Me5)Fe(CO)2}2] is catalytically active only on irradiation with visible light. For [{η5-C5H5)Fe(CO)2}2] and a range ofisocyanides RNC ( R = But, C6H5CH2, 2,6-Me2C6H3), catalyst modification by substitution with isocyanide is a major factor influencing the degree of the catalytic effects observed, e.g. [{(η5-C5H5)Fe(CO)(CNBut)}2] is approximately 35 times as active as [(η5-C5H5)2FE2(CO)3(CNBut)] for the [Fe(CO)4(CNBut)] → [Fe(CO)3(CNBut)2] conversion. Mechanistic studies on this system suggest that the catalytic substitution step probably involves a rapid intermolecular attack of isonitrile, possibly on a labile catalyst-substrate radical intermediate such as {[Fe(CO)4(CNR)][(η5-C5H5)Fe(CO)2]}; or on a reactive radical cation such as [Fe(CO)4(CNR)]+ generated via electron transfer between the substrate and the catalyst. Other transition metal complexes which also catalyze the substitution of CO by isocyanide in [Fe(CO)4(CNR)] (and [M(CO)6] (M = Cr, Mo, W), [Mn2(CO)10], [Re2(CO)10]) include [Ru3(CO)12], [H4Ru4(CO)12], [M4(CO)12] (M = Co, Ir) and [Co2(CO)8]. These reactions conform to the general mechanistic patterns established for [{(η5-C5H5)Fe(CO)2}2], suggesting a similar mechanism. A range of materials, notably PtO2, PdO and Pd/C, act as promoters for the homogeneous di- and poly-nuclear transition metal catalysts, and can even be used to induce activity in normally inactive dimer and cluster complexes e.g. [Os3(CO)12]. This promotion is attributed to at least three possible effects: the removal of catalyst inhibitors, a catalyzed substitution of the homogeneous catalyst partner, and a possible homogeneous-heterogeneous interaction which promotes the formation of catalytic intermediates.  相似文献   

11.
When the ferraenolate anion, (η-C5H5)(CO)2FeC(O)CH2, is treated sequentially with methyllithium/TMEDA and benzoyl chloride, the known η3-allyl complex, (η-C5H5)(OC)Fe{η3-CH2C[OC(O)Ph]C[OC(O)Ph](CH3}, is isolated in 36% yield. When the neutral alkenyl complexes, (η-C5H5)(CO)2Fe[C(Me)CH2] and (η-C5H5)(OC)2Fe{C(OMe)CH2], were treated sequentially with methyllithium and benzoyl chloride, the η3-allyl complexes, (η-C5H5)(OC)Fe{η3-CH2C(Me)C[OC(O)Ph](Me) and (η-C5H5)(OC)Fe{η3-CH2C(OMe)C[OC(O)Ph](Me) are isolated in 8 and 11% yield, respectively. These η3-allyl ligands are presumably formed via CC coupling of the donor atoms of the formal acyl and alkenyl ligands in the intermediate complexes.  相似文献   

12.
Reaction of 7,7-dimethoxy-5,6-dimethylidenebicyclo[2.2.1]hept-2-ene ( 2 ) with various metal carbonyls and their derivatives gave the η2-M(CO)4 (M = Fe ( 17 ), Ru ( 18 )), η4-M(CO)3 (M = Fe ( 19x, 19n ), Ru ( 20n )), and η2-M(CO)5 and η6-M(CO)3 (M = Cr, Mo, W) complexes. The trigonal bipyramidal η2-M(CO)4 complexes present an exceptional C3v symmetry at the metal with the C,C-double bond in an axial position. In all the η2-complexes, this double bond is stereospecifically coordinated by its exo-vs. endo4-Fe(CO)3 configuration was established by chemical correlation (hydrolysis, hydrogenation) with the corresponding complexes ( 24x, 24n ) of 7,7-dimethoxy-2,3-dimethylidenebicyclo[2.2.1]heptane ( 5 ). The relative rates of hydrolysis (AcOH/H2O 2:1, 50°C) of ligands 2 and 5 and of complexes 19x, 19n, 24x , and 24n to the corresponding ketones showed an acceleration effect only when the metal is coordinated to the exo-face. This was attributed to an F-strain effect on the leaving group of the substrate. Compound 17 was further metallated by [Fe2(CO)9] giving the bimetallic isomers 21xn and 21xx . The endocyclic C,C-double bond of the latter can be stereospecifically hydroformylated (1 atm CO, AcOH/H2O, 25°C) giving 29x (49%). Hydroformylation of 17 gave the corresponding uncoordinated aldehydes 30x/30n in better yields (76%) but with lower selectivity (3:1). These are the first examples of hydroformylation of an isolated [Fe(CO)4(olefin)] complex.  相似文献   

13.
The novel complexes CpRe(CCHPh)(CO)2 and Cp2Re2(μ-CCHPh)(CO)4 containing a terminal and a bridging phenylvinylidene ligand respectively and the binuclear complex Cp(CO)2Re[CC(Ph)C(Ph)CH2]Re(CO)2Cp were obtained in the reaction of CpRe(CO)3 with PhCCH.According to an X-ray study of the latter complex the unusual bridging ligand is η1-bonded to one Re atom and η2-bonded to the other.  相似文献   

14.
SnCl2 as a Bridging Ligand in [{(CO)5M}2Sn(Cl)2]2? (M = Cr, Mo, W) — Synthesis, Structure, and Reactivity [{(CO)5Cr}2Sn(Cl)2]2?, 1 , may be obtained from [(CO)5Cr]2? or [(CO)5CrSnCl2 · THF] in fair yields. Alternatively, 1 is accessible by the reaction of [Cr2(CO)10]2? with SnCl2. This procedure may be extended to the synthesis of [{(CO)5M}2Sn(Cl)2]2? (M = Mo, 2 ; M = W, 3 ). The compounds 1–3 are crystallized as their alkalimetal (12-crown-4)2 or [2,2,2]cryptand salts. X-ray analyses demonstrate bridging SnCl2-moieties with M? Sn? M-angles close to 130° in each case. The relation of the bonding situation in 1–3 to the ones observed for stannylene or ?inidene”? complexes, respectively, is discussed. The transformation of 1 into the rhombododecahedral (X-ray analysis) Sn? O-cage compound [{(CO)5CrSn}63-O)43-OH)4], 4 , demonstrates the reactivity of the dianions 1–3 .  相似文献   

15.
As a part of efforts to prepare new “metallachalcogenolate” precursors and develop their chemistry for the formation of ternary mixed‐metal chalcogenide nanoclusters, two sets of thermally stable, N‐heterocyclic carbene metal–chalcogenolate complexes of the general formula [(IPr)Ag?ESiMe3] (IPr=1,3‐bis(2,6‐diisopropylphenyl)imidazolin‐2‐ylidene; E=S, 1 ; Se, 2 ) and [(iPr2‐bimy)Cu?ESiMe3]2 (iPr2‐bimy=1,3‐diisopropylbenzimidazolin‐2‐ylidene; E=S, 4 ; Se, 5 ) are reported. These are prepared from the reaction between the corresponding carbene metal acetate, [(IPr)AgOAc] and [(iPr‐bimy)CuOAc] respectively, and E(SiMe3)2 at low temperature. The reaction of [(IPr)Ag?ESiMe3] 1 with mercury(II) acetate affords the heterometallic complex [{(IPr)AgS}2Hg] 3 containing two (IPr)Ag?S? fragments bonded to a central HgII, representing a mixed mercury–silver sulfide complex. The reaction of [(iPr2‐bimy)Cu‐SSiMe3]2, which contains a smaller N‐heterocyclic‐carbene, with mercuric(II) acetate affords the high nuclearity cluster, [(iPr2‐bimy)6Cu10S8Hg3] 6 . The new N‐heterocyclic carbene metal–chalcogenolate complexes 1 , 2 , 4 , 5 and the ternary mixed‐metal chalcogenolate complex 3 and cluster 6 have been characterized by multinuclear NMR spectroscopy (1H and 13C), elemental analysis and single‐crystal X‐ray diffraction.  相似文献   

16.
New tri- and tetranuclear macrocyclic silver(i) and copper(i) 3-ferrocenyl-5-(trifluoromethyl)pyrazolates were prepared: [{(3-((η5-C5H4)Fe(η5-C5H5))-5-(CF3)-Pz}M]3 (M = Cu (1), Ag (2)) and [{(3-(( η5-C5H4)Fe(η5-C5H5))-5-(CF3)-Pz}Cu]4 (3). The structures of compounds were established by X-ray diffraction analysis. In the crystalline state, a planar trinuclear silver-containing macrocycliс pyrazolate and a saddle-shaped tetranuclear copper-containing macrocycle are formed. The introduction of a bulky substituent, ferrocene, into the pyrazole ligand results in complete shielding of the acidic metal sites, which precludes the coordination of base molecules.  相似文献   

17.
Synthesis, Structure, and Reactivity of Functionalized Stibanido Complexes of Iron and Ruthenium [(η5-C5Me5)(CO)2MSbR1R2] (M = Fe, Ru; R1, R2 = SiMe3, C(O) t Bu, C(O)Ph, C(O)-1 Ad) The reaction of equimolar amounts of [(η5-C5Me5)(CO)2RuSb(SiMe3)2] ( 1 b ) and the carboxylic chlorides RC(O)Cl (R = tBu, Ph, 1-adamantyl) afforded the acyl(trimethylsilyl)stibanido complexes [(η5-C5Me5)(CO)2RuSb · {C(O)R}(SiMe3)] 2 b (R = tBu), 4 b (R = Ph), and 6 b (R = 1-Ad). The treatment of 1 b with two molar equivalents of pivaloyl chloride and benzoyl chloride led to the diacylstibanido complexes [(η5-C5Me5)(CO)2RuSb{C(O)R}2] ( 3 b , 5 b ). Analogously, the iron complex [(η5-C5Me5)(CO)2FeSb · (SiMe3)2] ( 1 a ) is converted into the corresponding diacylstibanido complexes 3 a (R = tBu), 5 a (R = Ph) and 7 a (R = 1-Ad) by an excess of acid chloride. The treatment of 1 a with equimolar amounts of RC(O)Cl gave inseparable mixtures of starting material and the monoacyl- and diacyl stibanido complexes. Oxalyl chloride reacted quantitatively with two equivalents of 1 a to give complex [{(η5-C5Me5) · (CO)2FeSb(SiMe3)C(O)}2] ( 8 ). The molecular structures of 1 a , 2 b and 5 b were elucidated by single crystal X-ray analyses.  相似文献   

18.
Syntheses and Crystal Structures of [μ‐(Me3SiCH2Sb)5–Sb1,Sb3–{W(CO)5}2] and [{(Me3Si)2CHSb}3Fe(CO)4] – Two Cyclic Complexes with Antimony Ligands cyclo‐(Me3SiCH2Sb)5 reacts with [(THF)W(CO)5] (THF = tetrahydrofuran) to form cyclo‐[μ‐(Me3SiCH2Sb)5–Sb1,Sb3–{W(CO)5}2] ( 1 ). The heterocycle cyclo‐ [{(Me3Si)2CHSb}3Fe(CO)4] ( 2 ) is formed by an insertion reaction of cyclo‐[(Me3Si)2CHSb]3 and [Fe2(CO)9]. The crystal structures of 1 and 2 are reported.  相似文献   

19.
The reaction of a mixture of sodium cyclopentadienide and the monolithium salt or dilithium salt of 2,2-bis(indenyl)propane with FeCl2 leads to the mononuclear complex [(η5-C5H5)Fe(η5-ind-C(CH3)2-ind)] (ind = 1-indenyl) (1) and the dinuclear complex [{(η5-C5H5)Fe(η5-ind)}2C(CH3)2] (2), respectively. [(η5-Me5C5)Fe(tmeda)Cl] reacts with dilithium 1,1′-biindenyl under formation of [{(η5-Me5C5)Fe}2(μ-η55-1,1′-biind)] (4). Due to the annelated arene rings of the η5-indenyl ligands, 2 and 4 may act as 4-electron donor ligands, as exemplified by the reaction with the triple-decker complex [{(η5-Me5C5)Co}2(μ-η66-toluene)], which afforded the tetranuclear dimer of triple-decker complexes [{(η5-C5H5)Fe(η5-Me5C5)Co(μ-η54-1-ind)}2C(CH3)2] (3) and the trinuclear complex [{(η5-Me5C5)Fe}25-Me5C5)Co(μ3545-1,1′-biind)] · Et2O (5 · Et2O) by replacement of the central toluene deck, respectively. The [(η5-Me5C5)Co] fragments of 3 and 5 are bonded via the six-membered rings of the indenyl ligands in a η4-fashion. Caused by the coordination to the Co atoms the six-membered rings lose their planarity and adopt a butterfly structure. The coordination geometry of the Fe atoms is similar in all five complexes. Each Fe atom is coordinated by the C atoms of one of the five-membered rings of the indenyl ligands in a slightly distorted η5 manner (η3 + η2-coordination) and by a cyclopentadienyl ligand in a regular η5-fashion. The structures of 3 and 5 represent the first examples of slipped triple-decker complexes which comprise indenyl ligands in a μ-η54 coordination mode.  相似文献   

20.
The synthesis, structural characterization, and reactivity of the first two‐coordinate cobalt complex featuring a metal–element multiple bond [(IPr)Co(NDmp)] ( 4 ; IPr=1,3‐bis(2′,6′‐diisopropylphenyl)imidazole‐2‐ylidene; Dmp=2,6‐dimesitylphenyl) is reported. Complex 4 was prepared from the reaction of [(IPr)Co(η2‐vtms)2] (vtms=vinyltrimethylsilane) with DmpN3. An X‐ray diffraction study revealed its linear C? Co? N core and a short Co? N distance (1.691(6) Å). Spectroscopic characterization and calculation studies indicated the high‐spin nature of 4 and the multiple‐bond character of the Co? N bond. Complex 4 effected group‐transfer reactions to CO and ethylene to form isocyanide and imine, respectively. It also facilitated E? H (E=C, Si) σ‐bond activation of terminal alkyne and hydrosilanes to produce the corresponding cobalt(II) alkynyl and cobalt(II) hydride complexes as 1,2‐addition products.  相似文献   

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