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1.
Investigations on the Reactivity of [Me2AlP(SiMe3)2]2 with Base‐stabilized Organogalliumhalides and ‐hydrides [Me2AlP(SiMe3)2]2 ( 1 ) reacts with dmap?Ga(Cl)Me2, dmap?Ga(Me)Cl2, dmap?GaCl3 and dmap?Ga(H)Me2 with Al‐P bond cleavage and subsequent formation of heterocyclic [Me2GaP(SiMe3)2]2 ( 2 ) as well as dmap?AlMexCl3?x (x = 3 8 ; 2 3 ; 1 4 ; 0 5 ). The reaction between equimolar amounts of dmap?Al(Me2)P(SiMe3)2 and dmap?Ga(t‐Bu2)Cl yield dmap?Ga(t‐Bu2)P(SiMe3)2 ( 6 ) and dmap?AlMe2Cl ( 3 ). 2 – 8 were characterized by NMR spectroscopy, 2 and 6 also by single crystal X‐ray diffraction.  相似文献   

2.
Synthesis of a Functional Aluminium Alkynide, Me3C‐C≡C‐AlBr2, and its Reactions with the Bulky Lithium Compound LiCH(SiMe3)2 Treatment of aluminium tribromide with the lithium alkynide (Li)C≡C‐CMe3 afforded the aluminium alkynide Me3C‐C≡C‐AlBr2 ( 1 ) in an almost quantitative yield. 1 crystallizes with trimeric formula units possessing Al3C3 heterocycles and the anionic carbon atoms of the alkynido groups in the bridging positions. A dynamic equilibrium was determined in solution which probably comprises trimeric and dimeric formula units. Reaction of 1 with one equivalent of LiCH(SiMe3)2 yielded the compound [Me3C‐C≡C‐Al(Br)‐CH(SiMe3)2]2 ( 2 ), which is a dimer via Al‐C‐Al bridges. Two equivalents of the lithium compound gave a mixture of four main‐products, which could be identified as 2 , Li[Me3C‐C≡C‐Al{CH(SiMe3)2}3] ( 3 ), Me3C‐C≡C‐Al[CH(SiMe3)2]2 ( 4 ), and Al[CH(SiMe3)2]3. The lithium atom of 3 is coordinated by the C≡C triple bond and an inner carbon atom of one bis(trimethylsilyl)methyl group. Further interactions were observed to C‐H bonds of methyl groups.  相似文献   

3.
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   

4.
TiCl4 reacts quantitatively with Cl2Si(NHSiMe3)2 in n‐pentane under evolution of Me3SiCl yielding [μ‐ClTiCl2N(SiMe3)‐SiCl2NH2]2 ( 1 ), which is obtained as a yellow, crystalline solid forming small intergrown needles, that rapidly hydrolyse. The product 1 shows a thermal stability up to 80?C. The molecular structure of 1 has been solved by X‐ray powder diffraction methods and it could be confirmed by single‐crystal X‐ray structure determination at ‐70 ?C. Accordingly, in the solid 1 is a dimer ([μ‐ClTiCl2N(SiMe3)SiCl2NH2]2, P21/n (no. 14), Z = 2, a = 1504.89(6), b = 1296.33(6), c = 710.90(4) pm, and β = 91.276(2)?).  相似文献   

5.
New GaE and InE Four Membered Ring Compounds: Syntheses and Crystal Structures of [Et2InE(SiMe3)2]2 and [GaCl(P t Bu2Me)E(SiMe3)]2 (E = P, As) Et3In · PR3 (R = Et, iPr) reacts with H2ESiMe3 under liberation of C2H6 and EH3 to form the cyclic compounds [Et2InE(SiMe3)2]2 ( 1 a : E = P, 1 b : E = As). 1 consists of a planar four membered In2E2 ring in which the indium and phosphorus or arsenic atoms are four coordinated. In contrast, the phosphorus/arsenic atoms in [GaCl(PtBu2Me)E(SiMe3)]2 ( 2 a : E = P, 2 b : E = As) only have the coordination number three. 2 results from the reaction of GaCl3 · PtBu2Me with As(SiMe3)3 or Li2PSiMe3 respectively, and displays a folded four membered Ga2E2 ring as central structural motif. 1 and 2 have been characterised by single crystal X‐ray diffraction analysis as well as 1H and 31P{1H} NMR spectroscopy.  相似文献   

6.
Crystal Structure of the Zinc Amide Zn[N(SiMe3)2]2 X‐ray quality crystals of Zn[N(SiMe3)2]2 (monoclinic, P21/c) are obtained by sublimation of the zinc amide Zn[N(SiMe3)2]2 at —30 °C in vacuo (300 torr). According to the result of the X‐ray structural analysis, Zn[N(SiMe3)2]2 contains an almost linear N‐Zn‐N unit with two short N‐Zn bonds.  相似文献   

7.
Coordination Chemistry of P‐rich Phosphanes and Silylphosphanes. XXII. The Formation of [η2‐{tBu–P=P–SiMe3}Pt(PR3)2] from (Me3Si)tBuP–P=P(Me)tBu2 and [η2‐{C2H4}Pt(PR3)2] (Me3Si)tBuP–P = P(Me)tBu2 reacts with [η2‐{C2H4}Pt(PR3)2] yielding [η2‐{tBu–P=P–SiMe3}Pt(PR3)2]. However, there is no indication for an isomer which would be the analogue to the well known [η2‐{tBu2P–P}Pt(PPh3)2]. The syntheses and NMR data of [η2‐{tBu–P=P–SiMe3}Pt(PPh3)2] and [η2‐{tBu–P=P–SiMe3}Pt(PMe3)2] as well as the results of the single crystal structure determination of [η2‐{tBu–P=P–SiMe3}Pt(PPh3)2] are reported.  相似文献   

8.
Syntheses and Structures of [ReNBr2(Me2PhP)3] and (Me2PhPH)[ fac ‐Re(NBBr3)Br3(Me2PhP)2] [ReNBr2(Me2PhP)3] ( 1 ) has been prepared by the reaction of [ReNCl2(Me2PhP)3] with Me3SiBr in dichloromethane. The bromo complex reacts with BBr3 under formation of [Re(NBBr3)Br2(Me2PhP)3] ( 2 ) or (Me2PhPH)[fac‐Re(NBBr3)Br3(Me2PhP)2] ( 3 ) depending on the experimental conditions. The formation of the nitrido bridge leads to a significant decrease of the structural trans influence of the nitrido ligand which is evident by the shortening of the Re‐(trans)Br bond from 2.795(1) Å in [ReNBr2(Me2PhP)3] to 2.620(1) Å in [fac‐Re(NBBr3)Br3(Me2PhP)2] and 2.598(1) Å in [Re(NBBr3)Br2(Me2PhP)3], respectively.  相似文献   

9.
Crystal Structures of a Series of Compounds with Cations of the Type [R3PNH2]+, [R3PN(H)SiMe3]+, and [R3PN(SiMe3)2]+ The crystal structures of a series of compounds with cations of the type [R3PNH2]+, [R3PN(H)SiMe3]+, and [R3PN(SiMe3)2]+, in which R represents various organic residues, are determined by means of X‐ray structure analyses at single crystals. The disilylated compounds [Me3PN(SiMe3)2]+I, [Et3PN(SiMe3)2]+I, and [Ph3PN(SiMe3)2]+I3 are prepared from the corresponding silylated phosphaneimines R3PNSiMe3 with Me3SiI. [Me3PNH2]Cl (1): Space group P21/n, Z = 4, lattice dimensions at –71 °C: a = 686.6(1), b = 938.8(1), c = 1124.3(1) pm; β = 103.31(1)°; R = 0.0239. [Et3PNH2]Cl (2): Space group Pbca, Z = 8, lattice dimensions at –50 °C: a = 1272.0(2), b = 1147.2(2), c = 1302.0(3) pm; R = 0.0419. [Et3PNH2]I (3): Space group P212121, Z = 4, lattice dimensions at –50 °C: a = 712.1(1), b = 1233.3(2), c = 1257.1(2) pm; R = 0.0576. [Et3PNH2]2[B10H10] (4): Space group P21/n, Z = 4, lattice dimensions at –50 °C: a = 809.3(1), b = 1703.6(1), c = 1800.1(1) pm; β = 96.34(1)°; R = 0.0533. [Ph3PNH2]ICl2 (5): Space group P1, Z = 2, lattice dimensions at –60 °C: a = 825.3(3), b = 1086.4(3), c = 1241.2(4) pm; α = 114.12(2)°, β = 104.50(2)°, γ = 93.21(2)°; R = 0.0644. In the compounds 1–5 the cations are connected with their anions via hydrogen bonds of the NH2 groups with 1–3 forming zigzag chains. [Me3PN(H)SiMe3][O3S–CF3] (6): Space group P21/c, Z = 8, lattice dimensions at –83 °C: a = 1777.1(1), b = 1173.6(1), c = 1611.4(1) pm; β = 115.389(6)°; R = 0.0332. [Et3PN(H)SiMe3]I (7): Space group P21/n, Z = 4, lattice dimensions at –70 °C: a = 1360.2(1), b = 874.2(1), c = 1462.1(1) pm; β = 115.19(1)°; R = 0.066. In 6 and 7 the cations form ion pairs with their anions via NH … X hydrogen bonds. [Me3PN(SiMe3)2]I (8): Space group P21/c, Z = 8, lattice dimensions at –60 °C: a = 1925.4(9), b = 1269.1(1), c = 1507.3(4); β = 111.79(3)°; R = 0.0581. [Et3PN(SiMe3)2]I (9): Space group Pbcn, Z = 8, lattice dimensions at –50 °C: a = 2554.0(2), b = 1322.3(1), c = 1165.3(2) pm; R = 0.037. [Ph3PN(SiMe3)2]I3 (10): Space group P21, Z = 2, lattice dimensions at –50 °C: a = 947.7(1), b = 1047.6(1), c = 1601.6(4) pm; β = 105.96(1)°; R = 0.0334. 8 to 10 are built up from separated ions.  相似文献   

10.
Preparation, Characterization and Reaction Behaviour of Sodium and Potassium Hydridosilylamides R2(H)Si—N(M)R′ (M = Na, K) — Crystal Structure of [(Me3C)2(H)Si—N(K)SiMe3]2 · THF The alkali metal hydridosilylamides R2(H)Si—N(M)R′ 1a‐Na — 1d—Na and 1a‐K — 1d‐K ( a : R = Me, R′ = CMe3; b : R = Me, R′ = SiMe3; c : R = Me, R′ = Si(H)Me2; d : R = CMe3, R′= SiMe3) have been prepared by reaction of the corresponding hydridosilylamines 1a — 1d with alkali metal M (M = Na, K) in presence of styrene or with alkali metal hydrides MH (M = Na, K). With NaNH2 in toluene Me2(H)Si—NHCMe3 ( 1a ) reacted not under metalation but under nucleophilic substitution of the H(Si) atom to give Me2(NaNH)Si—NHCMe3 ( 5 ). In the reaction of Me2(H)Si—NHSiMe3 ( 1b ) with NaNH2 intoluene a mixture of Me2(NaNH)Si—NHSiMe3 and Me2(H)Si—N(Na)SiMe3 ( 1b‐Na ) was obtained. The hydridosilylamides have been characterized spectroscopically. The spectroscopic data of these amides and of the corresponding lithium derivatives are discussed. The 29Si‐NMR‐chemical shifts and the 29Si—1H coupling constants of homologous alkali metal hydridosilylamides R2(H)Si—N(M)R′ (M = Li, Na, K) are depending on the alkali metal. With increasing of the ionic character of the M—N bond M = K > Na > Li the 29Si‐NMR‐signals are shifted upfield and the 29Si—1H coupling constants except for compounds (Me3C)(H)Si—N(M)SiMe3 are decreased. The reaction behaviour of the amides 1a‐Na — 1c‐Na and 1a‐K — 1c‐K was investigated toward chlorotrimethylsilane in tetrahydrofuran (THF) and in n‐pentane. In THF the amides produced just like the analogous lithium amides the corresponding N‐silylation products Me2(H)Si—N(SiMe3)R′ ( 2a — 2c ) in high yields. The reaction of the sodium amides with chlorotrimethylsilane in nonpolar solvent n‐pentane produced from 1a‐Na the cyclodisilazane [Me2Si—NCMe3]2 ( 8a ), from 1b‐Na and 1‐Na mixtures of cyclodisilazane [Me2Si—NR′]2 ( 8b , 8c ) and N‐silylation product 2b , 2c . In contrast to 1b‐Na and 1c‐Na and to the analogous lithium amides the reaction of 1b‐K and 1c‐K with chlorotrimethylsilane afforded the N‐silylation products Me2(H)Si—N(SiMe3)R′ ( 2b , 2c ) in high yields. The amide [(Me3C)2(H)Si—N(K)SiMe3]2·THF ( 9 ) crystallizes in the space group C2/c with Z = 4. The central part of the molecule is a planar four‐membered K2N2 ring. One potassium atom is coordinated by two nitrogen atoms and the other one by two nitrogen atoms and one oxygen atom. Furthermore K···H(Si) and K···CH3 contacts exist in 9 . The K—N distances in the K2N2 ring differ marginally.  相似文献   

11.
Synthesis and Structures of Novel Ring Compounds of Bismuth with Tris(trimethylsilyl)silyl and ‐stannyl Substituents – [(Me3Si)3Si]4Bi4 and [(Me3Si)3Sn]6Bi8 A bicyclo[3.3.0]octane‐like core consisting of eight bismuth atoms is found in the novel octabismuthane Bi8[Sn(SiMe3)3]6. It is prepared like Bi4[Si(SiMe3)3]4 by reduction of BiBr3 with Li(thf)3E(SiMe3)3 (E = Si, Sn) together with (Me3Si)6E2. Both bismuth ring compounds have been characterized by single crystal X‐ray crystallography.  相似文献   

12.
The synthesis of new dihaloheptasilanes X2Si[SiMe(SiMe3)2]2 (X=Cl: 2, Br: 3, I: 4) was performed by treating dihydridoheptasilane 1 (X=H) with CCl4, HCBr3 or HCI3. Difluoroheptasilane 6 (X=F) was prepared from either diphenylheptasilane 5 (X=Ph), triflic acid (HOTf), and LiF with concomitant isolation of heptasilanes 7 (X2=Ph and OTf), 8 (X2=F and Ph), and 9 (X2=F and OTf), or by halogen exchange from 2 using ZnF2. Crystal structures of 2, 3, 4, and 5 are reported. The reduction of 2 with Li, Na or KC8 resulted in the instantaneous formation of various cyclotrisilanes, while the reduction of 3 gave exclusively the unsymmetrical cyclotrisilane (E)-1-methyl-2,3,3-tris[methylbis(trimethylsilyl)silyl]-1,2-bis(trimethylsilyl)cyclotrisilane 10, which was characterized by X-ray crystallography. A mechanism for the formation of cyclotrisilanes via a silylsilylene-to-disilene rearrangement is proposed. Attempts to prepare the tetradekasilane [(Me3Si)2MeSi]2SiH–SiH[SiMe(SiMe3)2]2 (by reductive dehalogenation of either HClSi[SiMe(SiMe3)2]2 13 or HISi[SiMe(SiMe3)2]2 18), or the tetradekasilane [(Me3Si)2MeSi]2SiPh–SiPh[SiMe(SiMe3)2]2 (by reductive dehalogenation of either PhClSi[SiMe(SiMe3)2]2 14 or PhISi[SiMe(SiMe3)2]2 19) as precursors for the disilene [(Me3Si)2MeSi]2Si=Si[SiMe(SiMe3)2]2 failed. 14 was characterized by X-ray crystallography. All compounds described were also characterized by multinuclear NMR spectroscopy and elemental analysis.  相似文献   

13.
Terminal and Bridging Coordination of Indium‐Indium Bonds – Remarkable Polymorphism with the Compound In2R2[(OCC6H5)2CH]2 [R = C(SiMe3)3] Treatment of the dimeric indium(II) subhalide (In2R2Cl2)2 ( 1 ) [R = C(SiMe3)3] with four equivalents of lithium dipivaloylmethanide or lithium dibenzoylmethanide afforded by the release of lithium chloride the corresponding diindium diacetylacetonates ( 2 and 3 ). The In‐In single bonds of the products were terminally coordinated by chelating acectylacetonato ligands and the bulky alkyl groups. Three different crystal structures were determined for the dibenzoylmethanide derivative 3 which in the solid state adopted trans and gauche conformations across the In‐In bonds. In contrast to the terminally arranged acetylacetonato ligands of compounds 2 and 3 alkylbenzoato ligands R‐COO? (3,5‐dimethylbenzoate and ptert‐butylbenzoate) gave the bridging coordination of the In‐In bonds by two chelating carboxylato groups ( 4 and 5 ). This particular coordination caused a strong shortening of the In‐In bond length in 4 compared to the unsupported bonds in 2 and 3 (264.6 versus 274.7 to 279.3 pm).  相似文献   

14.
The metalation of HP(SiMe3)2 with Y[CH(SiMe3)2]3 gives the homoleptic {Y[P(SiMe3)2]3}2 (1) which crystallizes from toluene in the monoclinic space group P21/c. The yttrium atoms are in a distorted tetrahedral environment with Y‐P bond lengths of 267.7 and 284.8 pm to the terminal and bridging substituents, respectively. The metathesis reaction of [1, 3‐(Me3Si)2C5H3]2YCl with KPSitBu3 yields (tetrahydrofuran‐O)‐1, 1', 3, 3'‐tetrakis(trimethylsilyl)yttrocene‐tri(tert‐butyl)silylphosphanide ( 2 ). The molecular structure of 2 in solution was deduced by NMR spectroscopy and X‐ray crystallography. The coupling constants 1J(Y, P) and 1J(P, H) show values of 144.0 Hz and 201.0 Hz, respectively.  相似文献   

15.
The reaction of CuCl, LiAs(SiMe3)2 and dppb (Bis(diphenylphosphino)butane) leads to the formation of ionic cluster complexes. Depending on the reaction conditions one can isolate [Cu8As3(AsSiMe3)2(dppb)4]+[Cu{As2(SiMe3)2}{As4(SiMe3)4}] ( 1 ) and [Cu8As3(AsSiMe3)2(dppb)4]+[Cu{As(SiMe3)2}2] ( 2 ). The same reaction of CuCl, dppm (Bis(diphenylphosphino)methane) and LiSb(SiMe3)2 leads to the neutral cluster complex [Cu10(Sb3)2(SbSiMe3)2(dppm)6] ( 3 ). The structures of 1‐3 have been solved by X‐ray single crystal analyses.  相似文献   

16.
Formation and Structure of the Cyclophosphanes P4(CMe3)2[P(CMe3)2]2 and P4(SiMe3)2[P(CMe3)2]2 n-Triphosphanes showing a SiMe3 and a Cl substituent at the atoms P1 and P2, like (Me3C)2P? P(SiMe3)? P(CMe3)Cl 3 or (Me3C)2P? P(Cl)? P(SiMe3)2 4 are stable only at temperatures below ?30°C. Above this temperature these compounds lose Me3SiCl, thus forming cyclotetraphosphanes, P4(CMe3)2[P(CMe3)2]2 1 out of 3 , P4(SiMe3)2[P(SiMe3)2]2 2a (cis) and 2b (trans) out of 4 . The formation of 1 proceeds via (Me3C)2P? P?PCMe3 5 as intermediate compound, which after addition to cyclopentadiene to give the Diels-Alder-adduct 6 (exo and endo isomers) was isolated. 6 generates 5 , which then forms the dimer compound 1 . Likewise (Me3C)2P? P?P-SiMe3 8 (as proven by the adduct 7 ) is formed out of 4 , leading to 2a (cis) and 2b (trans). Compound 1 is also formed out of the iso-tetraphosphane P[P(CMe3)2]2[P(CMe3)Cl] 9 , which loses P(CMe3)2Cl when warmed to a temperature of 20°C. 1 crystallizes monoclinically in the space group P21/a (no. 14); a = 1762.0(15) pm; b = 1687.2(18) pm; c = 1170.5(9) pm; β = 109.18(5)° and Z = 4 formula units in the elementary cell. The molecule possesses E conformation. The central four-membered ring is puckered (approx. symmetry 4 2m; dihedral angle 47.4°), thus bringing the substituents into a quasi equatorial position and the nonbonding electron pairs into a quasi axial position. The bond lengths in the four-membered ring of 1 (d (P? P) = 222.9 pm) are only slightly longer than the exocyclic bonds (221.8 pm). The endocyclic bond angles \documentclass{article}\pagestyle{empty}\begin{document}$ \bar \beta $\end{document}(P/P/P) are 85.0°, the torsion angles are ±33° and d (P? C) = 189.7 pm.  相似文献   

17.
Reactions of Cyclostibanes, (RSb)n [R = (Me3Si)2CH, n = 3; Me3CCH2, n = 4, 5] with the Transition Metal Carbonyl Complexes [W(CO)5(thf)], [CpxMn(CO)2(thf)], [CpxCr(CO)3]2, and [Co2(CO)8]; Cpx = MeC5H4 (RSb)3 [R = (Me3Si)2CH] reacts with [W(CO)5(thf)], [CpxMn(CO)2(thf)], or [Co2(CO)8] to give [(RSb)3W(CO)5] ( 1 ), [RSb{Mn(CO)2Cpx}2] ( 2 ) or [RSbCo(CO)3]2 ( 3 ). The reaction of (R′Sb)n (n = 4, 5; R′ = Me3CCH2) with [CpxCr(CO)3]2 leads to [(R′Sb)4{Cr(CO)2Cpx}2] ( 4 ); Cpx = MeC5H4, thf = Tetrahydrofuran.  相似文献   

18.
[Tc(NBCl2Ph)Cl2(Me2PhP)3] and [Tc(NBH3)Cl2(Me2PhP)3] – the First Technetium Complexes with Nitrido Bridges between Technetium and Boron [TcNCl2(Me2PhP)3] reacts with BCl2Ph or BH3 · THF at low temperatures under formation of complexes containing a nitrido bridge between technetium and boron. The compounds are instable and decompose at room temperature under cleavage of the N–B bonds. The pale‐purple [Tc(NBCl2Ph)Cl2(Me2PhP)3] crystallizes in the orthorhombic space group Fdd2. The Tc≡N bond is only slightly lengthened by the formation of the N–B bond of 1.564(4) Å. However, a considerable lengthening of the Tc–Cl bond in trans position to the nitrido ligand is observed which can be attributed to an decreasing of the structural trans influence of the nitrido moiety. A similar structural feature can be found in [Tc(NBH3)Cl2(Me2PhP)3] which is the first structurally characterized transition metal complex containing a nitrido bridge to unsubstituted borane.  相似文献   

19.
Reaction of [(Me3Si)2CH]2Al? CH2? Al [CH(SiMe3)2]2 with Neopentyllithium: Formation of {[(Me3Si)2CH]2Al? CH2? Al [CH(SiMe3)2]2CH2CMe3} ? [Li(TMEDA)2]⊕ The recently synthesized methylene bridged dialuminium compound [(Me3Si)2CH]2Al? CH2? Al [CH(SiMe3)2]2 reacts with neopentyl lithium in the presence of TMEDA to give the stable {[(Me3Si)2CH]2Al? CH2? Al [CH(SiMe3)2]2CH2 · CMe3}? [Li(TMEDA)2]⊕ decomposing at 115°C. The aluminium atoms therein are not additionally bridged, but the new substituent is occupying a terminal position as detected by crystal structure determination. A compound is formed containing a saturated, fourfold coordinated neighbouring a formally unsaturated, threefold coordinated aluminium atom. Due to high sterical restrictions the Al? C bonds are lengthened up to 209.0(3) pm at the alanate site and the Al? C? Al angle in the methylene bridge is extraordinarily enlarged to 144.4(2)°.  相似文献   

20.
Trialkylhydridoalanates RxR′3?xAlH? [R = CMe3; R′ = CH(SiMe3)2] The very strong base tert-butyl lithium reacts in the presence of chelating tetramethylethylendiamine with the aluminium organyls Al[CH(SiMe3)2]2CMe3 1 and Al[CH(SiMe3)2](CMe3)2 2 not under proton abstraction from the C? H acidic elementorganic substituent, but under β-elimination and addition of the thereby formed LiH to the coordinatively unsaturated aluminium atom. Two alanates — [Hal{CH(SiMe3)2}2CMe3]? 3 and [HAl{CH(SiMe3)2}(CMe3)2]? 4 each with Li(TMEDA)2 as counterion — were isolated; they exhibit separate anions and cations in solid state as shown by a crystal structure determination on 3 . In absence of the chelating amine tert-butyl lithium decomposes under the catalytic effect of the aluminium compound to LiH, which does not add to aluminium and precipitates in a reactive form.  相似文献   

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