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1.
Abstract

The one-pot synthesis of tetrasubstituted imidazoles by use of a series of LaxSr1 ? xFeyCo1 ? yO3 perovskites as catalysts is described. The La0.8Sr0.2Fe0.34Co0.66O3 nanocatalyst had the greatest activity in the heterogeneous cyclocondensation of an aldehyde, benzil, ammonium acetate, and a primary aromatic amine in water under ultrasonic irradiation. Some of the derivatives generated during this work were utilized as substrates for the synthesis in good yields of novel multifunctional tetrasubstituted imidazoles with Me3Si, C=S, and SH groups, via nucleophilic attack of tris(trimethylsilyl)methyllithium (TsiLi) at the carbon of carbon disulphide.  相似文献   

2.
Synthesis and Crystal Structure of [(Me3Si)2BiCu(PMe3)3] — the First Complex with a Bismuth—Copper Bond The reaction of CuOt Bu with PMe3 and Bi(SiMe3)3 in hexane yields the phosphine‐stabilized complex [(Me3Si)2Bi‐Cu( PMe3)3]. This synthesis gave rise to the first binuclear Bi—Cu compound to be structurally characterized by X‐ray crystallography.  相似文献   

3.
The reaction of aminofluorsilanes of the type (R=H,F) (Me 3Si)2N?SiF2R with two moles of ammonia, or of a mono- or dialkylamine, yields the corresponding amino-compounds, e.g. (Me 3Si)2N?Si(F)R?NH2, (Me 3Si)2N?Si(F)R?NHR′ and (Me 3Si)2N?Si(F)R?NR2′ (R′=Me, Et). Analogous products are obtained by reaction of the aminofluorosilanes with lithium salts of amines with bulky organic substituents in a 1 : 1 molar ratio. Alkoxy- and aryloxyaminofluorosilanes are prepared by the reaction of sodium alcoholates and sodium phenolate with (Me 3Si)2N?Si(F2)R (R=H, C2H3, C2H5, C6H5). The i.r.-, mass-,1H- and19F-NMR spectra of the above compounds are reported.  相似文献   

4.
The reaction of tris(trimethylsilyl)methylboron dihalides (Me3Si)3CBX2 (X = Cl, F) with the lithium phosphides LiPHtBu and LiPHmes leads to the phosphinoboranes (Me3Si)3CBX‐(PHR), (Me3Si)3CB(PHR)2 or the 1,3,2,4‐diphosphadiboretanes [(Me3Si)3CB(PR)]2, depending on the ratio of the reagents, the reaction temperature and concentration. High dilution and low temperatures are required for the synthesis of (Me3Si)3CB(Hal)PHR ( 1–3 ) in order to prevent the formation of (Me3Si)3CB(PHR)2 ( 4 and 5 ). The latter compounds are best prepared in a two step phosphination from (Me3Si)3CBHal2 and LiPHR. At higher temperatures the four‐membered 1,3,2,4‐diphosphadiboretanes [(Me3Si)3CB(PR)]2 6 and 7 are the most stable compounds. On the other hand, compounds of type (Me3Si)3CB(Hal)PR2, 8 and 9 , are thermally more stable than the monophosphinoboranes 1 – 3 . Phosphinoboranes of type (Me3Si)3CB(PR2)2 (R = tBu, mes) could not be prepared. NMR and mass spectral data are in accord with the monomeric nature of compounds 1 to 9 .  相似文献   

5.
Ionic Structures of 4- and 5-coordinated Silicon. Novel Ionic Crystal Structures of 4- and 5-coordinated Silicon: [Me3Si(NMI)]+ Cl?, [Me2HSi(NMI)2]+ Cl?, [Me2Si(NMI)3]2+ 2 Cl?. NMI Me3SiCl forms with N-Methylimidazole (NMI) a crystalline 1:1-compound which is stable at room temperature. The X-ray single crystal investigation proves the ionic structure [Me3Si(NMI)]+Cl? 1 which is the result of the cleavage of the Si? Cl bond and the addition of an NMI-ring. The reaction of Me2HSiCl with NMI (in the molar ratio of 1:2), under cleavage of the Si? Cl bond and co-ordination of two NMI rings, yields the compound [Me2HSi(NMI)2]+Cl? 2 . The analogous reaction of Me2SiCl2 with NMI (molar ratio 2:1) leads to a compound which consists of Me2SiCl2 and NMI in the molar ratio of 1:2. During the sublimation single crystals of the compound [Me2Si(NMI)3]2+ 2 Cl?. NMI 3 are formed.  相似文献   

6.
A borane B(C6F5)3‐catalyzed metathesis reaction between the Si?C bond in the cyclic (alkyl)(amino)germylene (CAAGe) 1 and the Si?H bond in a silane (R3SiH; 2 ) is reported. Mechanistic studies propose that the initial step of the reaction involves Si?H bond activation to furnish an ionic species [ 1 ‐SiR3]+[HB(C6F5)3]?, from which [Me3Si]+[HB(C6F5)3]? and an azagermole intermediate are generated. The former yields Me3SiH concomitant with the regeneration of B(C6F5)3 whereas the latter undergoes isomerization to afford CAAGes bearing various silyl groups on the carbon atom next to the germylene center. This strategy allows the straightforward synthesis of eight new CAAGes starting from 1 .  相似文献   

7.
The chelating ligand Me3COSiMe2N(CMe3)H (III) can easily be prepared in high yields and has been employed for the synthesis of some metal derivatives. With n-butyllithium III forms [Me2Si(Me3CO)(Me3CNLi)]2 (IV), which is found to be dimeric in solution and in the gas phase. When IV is allowed to react with thallium(I) chloride in diethyl ether the monomeric, highly reactive Me2Si- (Me3CO)(Me3CNTl) (II) is formed under precipitation of lithium chloride. The cyclic structure and the physical properties of II can be understood on the basis of isosteric relation to cyclic diazasilastannylenes. II forms the tetramer (TlOMe)4 with methanol and does not add methyl iodide to the metal, the thalium containing product being TII. With magnesium dichloride in diethyl ether yields thallium(I) chloride and the spiro compound [Me2Si(Me3CO)(Me3CN)]2-Mg (VI), in which magnesium exhibits 4-fold coordination.  相似文献   

8.
Lithium and sodium tris(trimethylsilyl)silanolates were obtained by the reaction of tris(trimethylsilyl)silanol with BunLi or PriONa in hexane. The degree of association of silanolates in benzene solution was found to be 2 and 4 for the sodium and lithium derivatives, respectively. (Me3Si)3SiONa is noticeably more active than the lithium derivative in the reaction with Me3SiCl. Tris(trimethylsilyl)silanol reacts with trimethylchlorosilane to give (Me3Si)3SiCl. The hydrolysis of (Me3Si)3SiONa (Li) in benzene and hexane yields the corresponding silanol, whereas in HMPA the splitting of Si-Si bonds and hydrogen evolution were observed.Translated fromIzvestiya Akademii Nauk. Seriya Khimicheskaya, No. 6, pp. 1146–1149, June, 1995.This work was carried out with financial support from the International Scientific and Technical Center (Project No 015-94).  相似文献   

9.
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   

10.
The Reaction Behaviour of Lithiated Aminosilanes RR′Si(H)N(Li)SiMe3 The bis(trimethylsilyl)aminosubstituted silances RR′Si(H)N(SiMe3)2 11 – 16 (R,R′ = Me, Me3SiNH, (Me3Si)2N) are obtained by the reaction of the lithium silylamides RR′Si(H)N(Li)SiMe3 1 – 10 (R,R′ = Me3SiNLi, Me, Me3SiNH, (M3Si)2N) with chlorotrimethylsilane in the polar solvent tetrahydrofurane (THF). In the reaction of the lithium silylamides [(Me3Si)2N]2(Me3SiNLi)SiH 10 with chlorotrimethylsilane in THF the rearranged product 1,1,3-tris[bis(trimethylsilyl)amino]-3-methyl-1,3-disila-butane [(Me3Si)2N]2Si(H)CH2SiMe2N(SiMe3)2 17 is formed. The reaction of the lithium silyamides RR′ Si(H)N(Li)SiMe3 1 – 3 (1: R = R′ = Me; 2: R = Me, R′ = Me3SiNH; 3: R = Me, R′ = Me3SiNLi) with chlorotrimethylsilane in the nonpolar solvent n-hexane gives the cyclodisilazanes [RR′ Si? NSiMe3]2 18 – 22 (R = Me, Me3SiNH, (Me3Si)2N; R′ = Me, Me3SiNH, (Me3Si)2N, N(SiMe3)Si · Me(NHSiMe3)2) and trimethylsilane. The lithium silylamides 4 , 5 , 6 , 9 , 10 (4: R = R′ = Me3SiNH; 5: R = Me3SiNH, R′ = Me3SiNLi; 6: R = R′ = Me3SiNLi; 9: R = (Me3Si)2N, R ′ = Me3SiNLi; 10: R = R′ = (Me3Si)2N) shows with chlorotrimethylsilane in n-hexane no reaction. The crystal structure of 17 and 21 are reported.  相似文献   

11.
The reactions of dodecamethylcyclohexasilane and high-molecular-weight polydimethylsilane with chlorides of I, II, IV-VI and VIII Group metals at high temperature in the absence of a solvent were studied. The interaction of (Me2Si)6 with metal chlorides proceeds with the cleavage of SiSi and SiC bonds with the formation of chloro derivatives of linear and cyclic permethyloligosilanes. The reactions of polydimethylsilane with metal chlorides afford mixtures of α,ω-dichlorooligosilanes, Cl(Me2Si)nCl (n=2-9). The influence of the reaction conditions (temperature, reaction time and the reagent ratio) on the composition and yields of the reaction products was examined.  相似文献   

12.
Reactions of Silylphosphines with Sulphur We report about reactions of Me2P? SiMe3 2 , MeP(SiMe3)2 3 , (Me3Si)3P 4 , P2(SiMe3)4 5 , and (Me3Si)3P7 1 with elemental sulphur. Without using a solvent 2 reacts very vigorously. The reactions with 3 and 4 show less reactivity which is even more reduced with 5 and 1 . With equivalent amounts of sulphur the reactions with 2 , 3 , 4 lead to compounds with highest content of sulphur. These compounds are Me3SiS? P(S)Me2 9 from 2 , (Me3SiS)2P(S)Me 13 from 3 and (Me3SiS)3P(S) 16 from 4 . Besides, the by-products (Me3Si)2S 8 , P2Me4 7 , and Me2P(S)? P(S)Me2 11 can be obtained. The reactions of silylphosphines in a pentane solution run much slower so that the formation of intermediates can be observed. Reaction with 2 yields Me3SiS? PMe2 6 and Me2P(S)PMe2 10 , which lead to the final products in a further reaction with sulphur. From 3 (Me3SiS)(Me3Si)PMe 14 and (Me3SiS)2PMe 12 can be obtained which react with sulphur to (Me3SiS)2P(S)Me 13. 4 leads to the intermediates (Me3SiS)(Me3Si)2P 18 , (Me3SiS)2(Me3Si)P 17 , (Me3SiS)3P 15 yielding (Me3SiS)3P(S) 16 with excess sulphur. Depending on the molar ratio (P2SiMe3)4 5 reacts to (Me3Si)2P? P(SSiMe3)(Sime3), (Me3SiS)(Me3Si)P? P(SSiMe3). (Diastereoisomer ratio 10:1), (Me3SiS)2P? P(SiMe3)2 and (Me3SiS)2P? P(SSiMe3)(Sime3). With the molar ratio 1:4 the reaction yields (Me3SiS)2P? P(SSiMe3)2 (main product), (Me3SiS)3P(S) and (Me3SiS)3P. All silylated silylphosphines tend to decompose under formation of (Me3Si)2S. (Me3Si)3P7 reacts with sulphur at 20°C (15 h) under decomposition of the P7-cage and formation of (Me3SiS)3P(S). The products of the reaction of 5 with sulphur in hexane solution (molar ratio more than 1:3) undergo readily further reactions at 60°C under cleavage of P? P bonds and splitting off (Me3Si)2S, leading to (Me3SiS)3P(S) and cage molecules like P4S3, P4S7, and P4S10 and P? S-polymers. (Me3SiS)3P(S) isi thermally unstable and decomposes to P4S10 and (Me3Si)2S. Sulphur-containing silylphosphines like (Me3SiS)P(S)Me2 react with HBr at ?78°C under formation of Me3SiBr (quantitative cleavage of the Si? S bond) and Me2P(S)SH, which reacts with HBr to produce H2S and Me2P(S)Br.  相似文献   

13.
Lithiation of (Me3Si)3CH by methyllithium (ether-THF) yields (Me3Si)3CLi and by t-butyllithium (C5H12-TMEDA) yields (Me3Si)2CHSiMe2CH2Li. Only starting material is recovered when (Me3Si)3CH is allowed to react with n-butyl- lithium (ether-THF and C5H12-TMEDA) and t-butyllithium (C5H12 and C5H12- THF). (Me3Si)4C is lithiated by t-butyllithium (C5H12-TMEDA) to give (Me3Si)3- CSiMe2CH2Li, but not by methyllithium (ether-THF and ether-THF-TMEDA). The structures of the lithiated compounds are based on the carbonation products. The above results are explained in terms of carbanion stability and steric effects. Spectral data are reported on the α-silylacetic acids.  相似文献   

14.
Formation of Organosilicon Compounds. 108 [1]. Thermally Induced Reactions of Amino-Substituted Disilanes Thermally induced reactions of amino-substituted disilanes yield Si rich silanes. At 300°C, Me3Si? SiMe2? NMeH 1 yields Me3Si? NMeH 2 and Me3Si? (SiMe2)2-NMeH 3 in a ratio 1 : 2 : 3 = 1,6 : 1 : 1, whereas Me3Si? SiMe2? N(iPr)H 4 at 350°C yields Me3Si? N(iPr)H 5 , Me3Si? (SiMe2)2-N(iPr)H 6 and Me3Si? (SiMe2)3? N(iPr)H 7 in a ratio of 4 : 6 : 7 = 0.8 : 1.0 : 0.6. Me3Si? SiMe2? NMe2 8 at 300°C (72 h) yields Me3Si? NMe2 9 and Me3Si-(SiMe2)2-NMe2 10 in a ratio of 9 : 8 : 10 = 1 : 0.22 : 0.44 The thermal stability of these disilanes is determined by the sterical requirements of the amino substituents NMeH < NMe2 < N(iPr)H. The introduction of a second NMe2 group decreases the stability and favours the formation of Si rich silanes. Such, Me2N? (SiMe2)2? NMe2 11 already at 250°C (2 h) yields Me2N? SiMe2? NMe2 12 , Me2N? (SiMe2)2? NMe2 13 and Me2N? (SiMe2)4? NMe2 14 in a ratio of 11 : 13 : 14 = 0.3 : 0.9 : 1.0. The reactions can be understood as insertions of thermally produced dimethylsilylene into the Si? N bond of the disilanes. This process is strongly favoured as compared to the trapping reactions with Ph? C?C? Ph or Et3SiH. The mentioned reactions correspond closely to those of the methoxy-disilanes[2]. However (MeN? SiMe2? SiMe2)2 15 , obtained from HMeN? (SiMe2)2? NMeH by condensation [3], at 400°C suffers a ring contraction to octymethyl-1,3-diaza-2,4,5-trisilacyclopentane (69 weight %), and yields also some solid residue, the composition of which corresponds to Si3C7NH21.  相似文献   

15.
The reaction between LnI3(THF)3.5 and 2 equiv. of {(Me3Si)2(Me2MeOSi)C}K (1) in THF at room temperature yields only the mono-substituted products {(Me3Si)2(Me2MeOSi)C}LnI2(THF)2 [Ln = Y (5), Tm (6)]; under more forcing conditions decomposition occurs. In contrast, the metathesis reaction between TmI3(THF)3.5 and 2 equiv. of the lithium iodide-containing salt {(Me3Si)2(Me2MeOSi)C}K(LiI)x yields the highly unusual separated ion pair complex [[{(Me3Si)2C(SiMe2)}2O]TmI2{Li(THF)3}2][[{(Me3Si)2C(SiMe2)}2O]TmI2] (8). The dianionic ligand in 8 is derived from the coupling of 2 equiv. of (Me3Si)2(Me2MeOSi)C, accompanied by the formal elimination of Me2O. The structures of compounds 5, 6, and 8 have been determined by X-ray crystallography; compound 8 crystallizes as an unusual ion pair, the cation and anion of which differ only in the inclusion of 2 equiv. of Li(THF)3 in the former, bridged to thulium by iodide ions.  相似文献   

16.
Investigations of the Reaction between the [Lithium(trimethylsilyl)amido]-methyl-trimethyl-silylamino-silane Me(Me3SiNLi)(Me3SiNH)SiH and different Electrophiles The lithium silylamide Me(Me3SiNLi)(Me3SiNH)SiH 1 reacts with chlorotrimethylsilan in the nonpolar solvent n-hexane to the N-substitution product Me[(Me3Si)2N](Me3SiNH)SiH 2 and to the cyclodisilazane [Me(Me3SiNH)Si—N(SiMe3)]2 3 nearly in same amounts. The reaction of 1 with chlorotrimethylstannane gives besides small amounts of the cyclodisilazane 3 the N-substitution product Me[(Me3Si)(Me3Sn)N](Me3SiNH)SiH 4 . By the reaction of 1 with trimethylsilyltriflate the cyclodisilazane 3 is obtained as the main product. Furthermore 2 and the cyclodisilazane 5 are formed. Ethylbromide shows no reaction with 1 under the same conditions. These results indicate the existence of an equilibrium of the lithium silylamide 1 , the silanimine Me(Me3SiNH)Si?N(SiMe3) and lithium hydride.  相似文献   

17.
ZHANG  Lijun  WU  Hongping  SU  Shunpeng  WANG  Shaowu 《中国化学》2009,27(10):2061-2065
In the presence of 10 mol% lanthanide amide [(Me3Si)2N]3Ln(µ‐Cl)Li(THF)3, the aza‐Henry reaction of N‐tosyl imines with nitroalkanes (1:5 molar ratio) could be performed in good yields. The lanthanide amide‐catalyzed aza‐Henry reaction has the features of mild reaction conditions, tolerance of a variety of aromatic aldehyde‐derived imines and nitroalkanes, short time and good chemical yields. A catalytic mechanism for the reaction was also proposed.  相似文献   

18.
Reduction of (Me3Si)2CHSbCl2 with Mg in tetrahydrofuran yields [(Me3Si)2CHSb]n (n = 3, 4).  相似文献   

19.
Formation of Organosilicon Compounds. 103. Formation and Structure of cis and trans 2,4-Dichloro-2,4-bis(trimethylsilyl)-1,1,3,3-tetramethyl-1,3-disilacyclobutane The reaction of Me3Si? CCl2? SiMe2Cl with LiBu in THF yields 1,1,3,3-Tetramethyl-2,4-bis(trimethylsilyl) 1,3-disilabicyclo[1.1.0]butane. The product of the first reaction stage is Me3Si? CCl(Li)-SiMe2Cl. The 1,3-Disilacyclobutane 2 and 3 were isolated, when Me3Si? CCl2? SiMe2Cl was treated with LiBu in Et2O. This way the proof is given that 2 and 3 are intermediates of the formation of product 1 . The further products are 4 and 5 (CCl in 2 and 3 substituted by CH) and Me3Si? CH2? C(SiMeCl)2SiMe3. 2 crystallizes orthorhombically in the space group Fdd 2 (no. 43) with a = 2149.1 pm, b = 2229.2 pm, c = 1763.6 pm and Z = 16 molecules per cell. The central ring of disilacyclobutane is slightly folded (17.9°). The configuration of the C-Atoms in this four membered ring gets closer to a sp2 configuration built up by three Si? C bonds. The Cl-atoms approximately have orthogonal positions to these CSi3 arrangements. The extension of the C? Cl bonds (184.6 pm) and the mutual approximations of the Cl-atoms in the cis-position indicate a high reactivity of the molecule.  相似文献   

20.
The (Me3Si)3C group causes very large steric hindrance to nucleophilic displacement at a silicon atom to which it is attached, and (Me3Si)3CSiMe2Cl is even less reactive than t-Bu3SiCl towards base. The compounds (Me3Si)3CSiMe2X (X = Cl, Br, or I) are cleaved by MeOH/MeONa to give (Me3Si)2CHSiMe2OMe, possibly via the silaolefin (Me3Si)2 CSiMe2, and the correspondLug (Me3Si)3 CSiPh2X compounds undergo the analogous reaction even more readily. The halides (Me3Si)3CSiR2X (X = Cl or Br) and (Me3Si)3CSiCl3 do not react with boiling alcoholic silver nitrate, but the iodides (Me3Si)3CSiR2I are rapidly attacked.  相似文献   

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