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1.
Reactions of Tetrakis[bis(trimethylsilyl)methyl]dialane(4) with Methylisothiocyanate and Phenylisocyanate – Insertion into the Al? Al Bond and Fragmentation Tetrakis[bis(trimethylsilyl)methyl]dialane(4) 1 reacts with methyl isothiocyanate under cleavage of the C?S double bond and insertion of the remaining isonitrile fragment into the Al? Al bond. As shown by crystal structure determination a three-membered AlCN heterocycle ( 4 ) is formed by the interaction of the nitrogen lone pair with one unsaturated Al atom leading to an acute angle at the aluminium center N? Al? C of 36.6°. In contrast the reaction with the hard base phenyl isocyanate yields a mixture of many unknown compounds, from which only one ( 5 ) could be isolated in a very poor yield. The crystal structure of 5 reveals only one dialkyl aluminium fragment and a chelating ligand formed by the trimerization of the isocyanate under loss of one CO group and addition of a hydrogen atom. 5 was also synthesized by the specific reaction of the chloro dialkyl aluminium compound (R = CH(SiMe3)2) with Li[H5C6? N?C(O)? N(C6H5)? C(O)? N(H)? C6H5].  相似文献   

2.
Thermolysis of Sterically Stressed Alanates; Synthesis of Two New 1-Sila-3-alanata-cyclobutane Derivatives with Four-membered AlC2Si-Heterocycles The reaction of high shielded alkyl or aryl alanes with LiCH(SiMe3)2 in the presence of the chelating N,N′,N″-trimethyl-triazinane yields the sterically stressed alanates [(Me3C)2Al{CH(SiMe3)2}2]? 12 and [R? Al{CH(SiMe3)2}3]? (R = Me3SiCH2 13 , Et 14 , Me 15 , C6H5 16 ) each with a Li(triazinane)2 counter ion. On thermolysis of the sterically most shielded derivatives 12 and 13 at 130 to 150°C one equivalent of bis(trimethylsilyl)methane is liberated, and by deprotonation of methyl groups carbanionic species are formed, which are stabilized by intramolecular coordination to the unsaturated aluminium atoms under formation of AlC2Si heterocycles ( 19 and 20 ). 20 was characterized by a single crystal structure determination. The remaining alanates give under similar conditions either under dismutation the recently published heterocycle 1 with two intact CH(SiMe3)2 groups ( 14 and 15 ) or a methyl alanate by the replacement of a elementorganic substituent ( 16 ).  相似文献   

3.
Peripheral Bonding of Mercury(II) Iodide to Trinuclear Molybdenum-Sulfur-Dithiophosphinato Clusters: [Mo3S4(R2PS2)4HgI2] (R = Et, Pr) Reaction of Mo3S4(R2PS2)4 1 (a : R = Et, b : R = Pr) with HgI2 in THF yields the diamagnetic title complexes [Mo3S4(R2PS2)4HgI2] 3 . The crystal structure of [ 3a (H2O)] · 2 CH2Cl2 shows the complexes to consist of a triangular array of Mo atoms which are bridged by μ2? S atoms and capped by a μ3? S atom. Each of the Mo atoms is chelated by a dithiophosphinato ligand Et2PS2? and in addition two Mo atoms are bridged by a Et2PS2? ligand while the H2O molecule is bonded weakly to the third Mo atom. Thus, all Mo atoms reveal a distorted octahedral coordination sphere. HgI2 is ?peripherally”? bonded to the cluster via two S atoms, one of which belongs to a chelating ligand and the other one to the bridging ligand. Space group P1 , lattice constants a = 12.157(2), b = 15.284(3), c = 16.049(3) Å, α = 115.56(1), β = 107.35(1), and γ = 94.62(1)°; Z = 2, dcalc = 2.23 mg/mm3; 4 236 observed reflections, R = 0.068. In organic solvents complexes 3 are strong electrolytes. VT-31P NMR data suggest a stepwise dissociation of 3 with formation of [Mo3S4(R2PS2)3] +[(R2PS2)HgI2]? and elimination of the bridging ligand from the cluster.  相似文献   

4.
Synthesis and Crystal Structure of the Trimeric [(Me3Si)2CH]2Al? CN Tetrakis[bis(trimethylsilyl)methyl]dialane(4) 1 with an Al? Al bond reacts with tert-butyl isocyanide in the molar ratio of 1:2 within three days to give a mixture of several unknown products, from which the title compound 4 is isolated in a 26% yield by recrystallization from n-pentane. 4 is a trimer in the solid state via Al? C?N? Al bridges showing a nine-membered Al3C3N3 heterocycle in a boat conformation. In contrary to the reaction with phenyl isocyanide the expected dark red product of the twofold insertion into the Al? Al bond under formation of a carbon-carbon single bond is detected only spectroscopically as a minor by-product.  相似文献   

5.
Synthesis and Crystal Structure of the Spirocycle [(i-Pr)2P(S)NSiMe3]2SnCl2 The reaction of (i-Pr)2P(S)N(SiMe3)2 ( 1 ) with SnCl4 in 2:1 ratio yields under elimination of ClSiMe3 the four-membered spirocycle [(i-Pr)2P(S)NSiMe3]2SnCl2 ( 2 ). The molecular structure of 2 was investigated by an X-ray structure analysis. Compound 2 crystallises in the monoclinic space group P21, Z = 2, a = 938.1(1), b = 1 424.1(2), c = 1 207.2(1) pm, β = 110.59(1)°, R = 2.05% for 4 102 reflexions. Compound 2 is a spirocycle with two Sn? N? P? S-rings joined at tin. The two rings are in cis-position.  相似文献   

6.
Preparation of Dithiatetrazocine and Secondary Reactions Li[PhCN2(SiMe3)2] ( 1 ) or PhCN2(SiMe3)3 ( 3 ) react with SCl2 to give in good yields the dithiatetrazocine PhC(NSN)2CPh ( 2 ). By analogy, p-MeC6H4C(NSN)2CC6H4Me-p ( 7 ), p-NO2C6H4C(NSN)2-CC6H4NO2-p ( 8 ), and p-CF3C6H4C(NSN)2CC6H4CF3-p ( 9 ) are obtained from the reaction of p-MeC6H4CN2(SiMe3)3 ( 4 ), Li[p-NO2-C6H4CN2(SiMe3)2] ( 5 ), und Li[p-CF3C6H4CN2(SiMe3)2] ( 6 ) with SCl2. Reaction of 2 /LiCl with AgAsF6 in liquid SO2 leads to [PhCN2S2]+[AsF6] ( 10 ) and 3[PhCN2S2]+2[AsF6]Cl ( 11 ). The structures of 10 and 11 are confirmed by X-ray analyses.  相似文献   

7.
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   

8.
Synthesis and Molecular Structure of Two 1-Sila-3-alanata-cyclobutane Derivatives with Four-membered AlC2Si-Heterocycles The C? H acidic bis(trimethylsilyl)methyl compounds Me3C? AlR2 und Me3C? CH2? AlR2 (R ? CH(SiMe3)2) are deprotonated by treatment with the sterically high shielded base LiCH(SiMe3)2 in the presence of 1,3,5-trimethylhexahydrotriazinane. The deprotonation occurs at a methyl group of one of the element-organic substituents, and the formed carbanions are stabilized by coordination to the unsaturated Al atoms yielding four-membered heterocycles. Both products were characterized by a crystal structure determination each showing bent ring systems.  相似文献   

9.
The synthesis of mixed tethered alkyl uranium metallocenes has been investigated by examining the reactivity of the bis(tethered alkyl) metallocene [(η5‐C5Me4SiMe2CH2‐κC)2U] ( 1 ) with substrates that react with only one of the U? C linkages. The effect of these mixed tether coordination environments on the reactivity of the remaining U? C bond has been studied by using CO insertion chemistry. One equivalent of azidoadamantane (AdN3) reacts with 1 to yield the mixed tethered alkyl triazenido complex [(η5‐C5Me4SiMe2CH2‐κC)U(η5‐C5Me4SiMe2‐CH2NNN‐Ad‐κ2N1,3)]. Similarly, a single equivalent of CS2 reacts with 1 to form the mixed tethered alkyl dithiocarboxylate complex [(η5‐C5Me4SiMe2CH2‐κC)U(η5‐C5Me4SiMe2‐ CH2C(S)2‐κ2S,S′)], a reaction that constitutes the first example of CS2 insertion into a U4+? C bond. Complex 1 reacts with one equivalent of pyridine N‐oxide by C? H bond activation of the pyridine ring to form a mixed tethered alkyl cyclometalated pyridine N‐oxide complex [(η5‐C5Me4SiMe2CH2‐κC)(η5‐C5Me4SiMe3)U(C6H4NO‐κ2C,O)]. The remaining (η5‐C5Me4SiMe2CH2‐κC)2? ligand in each of these mixed tethered species show reactivity towards CO and tethered enolate ligands form by insertion. Subsequent rearrangement have been identified in [(η5‐C5Me4SiMe3)U(C5H4NO‐κ2C,O)(η5‐C5Me4SiMe2C(?CH2)O‐κO)] and [(η5‐C5Me4SiMe2CH2NNN‐Ad‐κ2N1,3)U(η5‐C5Me4SiMe2C(?CH2)O‐κO)].  相似文献   

10.
The acid–base reaction between Y(CH2SiMe3)3(thf)2 and the pyridyl‐functionalized cyclopentadienyl (Cp) ligand C5Me4H? C5H4N (1 equiv) at 0 °C afforded a mixture of two products: (η5:κ‐C5Me4? C5H4N)Y(CH2SiMe3)2(thf) ( 1 a ) and (η5:κ‐C5Me4? C5H4N)2YCH2SiMe3 ( 1 b ), in a 5:2 ratio. Addition of the same ligand (2 equiv) to Y(CH2SiMe3)3(thf)2, however, generated 1 b together with the novel complex 1 c , the first well defined yttrium mono(alkyl) complex (η5:κ‐C5Me4? C5H4N)[C5HMe33‐CH2)‐C5H4N‐κ]Y(CH2SiMe3) containing a rare κ/η3‐allylic coordination mode in which the C? H bond activation occurs unexpectedly with the allylic methyl group rather than conventionally on Cp ring. If the central metal was changed to lutetium, the equimolar reaction between Lu(CH2SiMe3)3(thf)2 and C5Me4H? C5H4N exclusively afforded the bis(alkyl) product (η5:κ‐C5Me4? C5H4N)Lu(CH2SiMe3)2(thf) ( 2 a ). Similarly, the reaction between the ligand (2 equiv) and Lu(CH2SiMe3)3(thf)2 gave the mono(alkyl) complex (η5:κ‐C5Me4? C5H4N)2LuCH2SiMe3 ( 2 b ), in which no ligand redistribution was observed. Strikingly, treatment of Sc(CH2SiMe3)3(thf)2 with C5Me4H? C5H4N in either 1:1 or 1:2 ratio at 0 °C generated the first cyclopentadienide‐based scandium zwitterionic “tuck‐over” complex 3 , (η5:κ‐C5Me4? C5H4N)Sc(thf)[μ‐η51:κ‐C5Me3(CH2)‐C5H4N]Sc(CH2SiMe3)3. In the zwitterion, the dianionic ligand [C5Me3(CH2)‐C5H4N]2? binds both to Sc13+ and to Sc23+, in η5 and η1/κ modes. In addition, the reaction chemistry, the molecular structures, and the mechanism are also discussed in detail.  相似文献   

11.
The nitrate anion coordinates to the Sn? CH2? Sn unit of the title phosphonium stannate, [Ph4P]+ [(Ph2ClSn)2CH2 ·NO3]?, to give a six‐membered ring having the penta‐coordinated tin atoms in a trigonal bipyramidal geometry. Copyright © 2003 John Wiley & Sons, Ltd.  相似文献   

12.
Coordination Chemistry of P-rich Phosphanes and Silylphasphanes. XIV. The Phosphinophosphinidene tBu2P? P as a Ligand in the Pt Complexes [η2-{tBu2P? P}Pt(PPh3)2] and [η2-{tBu2P? P}Pt(PEtPh2)2] [η2-{tBu2P? P}Pt(PPh3)2 1 and [η2-{tBu2P? P}Pt(PEtPh2)2] 2 are the first complex compounds of tBu2P? P 5 . They are formed in the reaction of tBu2P? P ? P(Me)tBu2 3 with [η2-{H2C ? CH2}Pt(PPh3)2] 6 or [η2-{H2C ? CH2}Pt(PEtPh2)2] 7 , respectively. Compound 1 is less stable than 2 and reacts on to [η2-{tBu2P? P} Pt(PPh3)(PtBu2Me)] 10 with the coincidently formed tBu2PMe. The molecular structures of 1 and 2 were derived from their 1H and 31P-NMR spectra, 2 was additionally characterized by a X ray structure determination. 2 crystallizes in the monoclinic space group P21/n with a = 1222.36(7) pm, b = 1770.7(1) pm, c = 1729.7(1) pm, β = 108.653(6)°.  相似文献   

13.
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   

14.
N-Silylation and Si? O Bond Splitting at the Reaction of Lithiated Siloxy-silylamino-silanes with Chlorotrimethylsilane Lithiated Siloxy-silylamino-silanes were allowed to react in tetrahydrofurane (THF) and in n-octane (favoured) and n-hexane, resp., with chlorotrimethylsilane. The monoamide (Me3SiO)Me2Si(NLiSiMe3) gives in THF and in n-octane the N-substitution product (Me3SiO)Me2Si · [N(SiMe3)2] 1 , the diamide (Me3SiO)MeSi(NLiSiMe3)2 only in THF the N-substitution products (Me3SiO)MeSi[N(SiMe3)2]2 2 (main product) and (Me3SiO)MeSi[N(SiMe3)2](NHSiMe3) 3 . In n-octane the diamide reacts mainly under Si? O bond splitting. The cyclodisilazane [(Me3SiNH)MeSi? NSiMe3]2 6 is obtained as the main product. Byproducts are 2, 3 and the tris(trimethylsilylamino) substituted disilazane (Me3SiO)(Me3SiNH)MeSi? N · (SiMe3)? SiMe(NHSiMe3)2 7 . The triamide (Me3SiO)Si · (NLiSiMe3)3 reacts under Si? O and Si? N bond splitting in n-octane as well as in THF. The cyclodisilazanes [(Me3SiNH)2 · Si? NSiMe3]2 10 and ( 11 : R = Me3SiNH, 12 : R = (Me3Si)2N) are formed. in THF furthermore the N-substitution products (Me3SiO)Si[N(SiMe3)2] · (NHSiMe3)2 4 and (Me3SiO)Si[N(SiMe3)2]2(NHSiMe3) 5 . The Si? O bond splitting occurs in boiling n-octane also in absence of the chlorotrimethylsilane. An amide solution of (Me3SiO)MeSi(NHSiMe3)2 with n-butyllithium in the molar ratio 1 : 1 leads in n-octane and n-hexane to 6 and 7 , in THF to 3 . The amide solutions of (Me3SiO)Si · (NHSiMe3)3 with n-butyllithium the molar ratio 1 : 1 and 1 : 2 give in THF 4 and 5 , respectively.  相似文献   

15.
A nickel? nickel‐bonded complex, [{Ni(μ‐L.?)}2] ( 1 ; L=[(2,6‐iPr2C6H3)NC(Me)]2), was synthesized from reduction of the LNiBr2 precursor by sodium metal. Further controllable reduction of 1 with 1.0, 2.0 and 3.0 equiv of Na, respectively, afforded the singly, doubly, and triply reduced compounds [Na(DME)3] ? [{Ni(μ‐L.?)}2] ( 2 ; DME=1,2‐dimethoxyethane), [Na(Et2O)]Na[(L.?)Ni? NiL2?] ( 3 ), and [Na(Et2O)]2Na[L2?Ni? NiL2?] ( 4 ). Here L represents the neutral ligand, L.? denotes its radical monoanion, and L2? is the dianion. All of the four compounds feature a short Ni? Ni bond from 2.2957(6) to 2.4649(8) Å. Interestingly, they display two different structures: the perpendicular ( 1 and 2 ) and the coaxial ( 3 and 4 ) structure, in which the metal? metal bond axis is perpendicular to or collinear with the axes of the α‐diimine ligands, respectively. The electronic structures, Ni? Ni bonding nature, and energetic comparisons of the two structure types were investigated by DFT computations.  相似文献   

16.
Formation of Organosilicon Compounds. 111. The Hydrogenation of Si-chlorinated, C-spiro-linked 2,4-Disilacyclobutanes with LiAlH4 or iBu2AlH. The Access to Si8C3H20 The hydrogenation of Si-chlorinated, C-spiro-linked 2,4-disilacyclobutanes containing C(SiCl3)2 terminal groups with LiAlH4 in Et2O proceeds under complete cleavage of the fourmembered rings and under elimination of one SiH3 group. Such, Si8C3Cl20 4 forms (H3Si)2CH? SiH2? CH(SiH3)? SiH2? CH(SiH3)2 4 α, and even Si8C3H20 4a with LiAlH4 forms 4 α. The hydrogenation of related compounds containing however CH(SiCl3) terminal groups similarly proceeds under ring cleavage but no SiH3 groups are eliminated. Such, (Cl3Si)CH(SiCl2)2CH(SiCl3) 41 forms (H3Si)2CH? SiH2? CH2(SiH3) 41 α. However, in reactions with iBu2AlH in pentane neither the disilacyclobutane rings are cleaved nor are SiH3 groups eliminated. Only by this method Si8C3H20 is accessible from 4 , Si6C2H16 3a from Si6C2Cl16 3 and Si4C2H12 41a from 41 . C(SiCl3)4 cleanly produces C(SiH3)4. Based on the knowledge about the different properties of LiAlH4 and iBu2AlH in hydrogenation reactions of disilacyclo-butanes it was possible to elucidate the composition and the structures of the hydrogenated derivatives of the product mixture from the reaction of MeCl2Si? CCl2? SiCl3 with Si(Cu) [1] and to trace them back to the initially formed Si chlorinated disilacyclobutanes Si6C2Cl15Me 34 , Si6C2Cl14Me2 35 , Si8C3Cl19Me 36 and Si8C3Cl18Me2 37 . Compound 4a forms colourless crystals of space group P1 with a = 799.7(6), b = 1263.6(12), c = 1758.7(14) pm, α = 103.33(7)°, β = 95.28(6)°, γ = 105.57(7)° and Z = 4.  相似文献   

17.
Through photocatalysed regiospecific and stereoselective additions of cycloamines to 5‐(R)‐(l)‐menthyloxy‐2 (5H)‐furanone (3), chiral 5‐(R)‐(l)‐menthyloxy‐4‐cycloaminobutyrolactones were synthesized. In the new asymmetric photoaddition of compound 3, the N‐methyl cyclic amines (4) gave novel chiral C? C photoadducts (5) in 24–50% isolated yields with d. e. ≥ 98%. However, the secondary cyclic amines (6) afforded optically active N? C photoadducts (7) in 34–58% isolated yields with d. e. ≥ 98% under the same condition. All the synthesized optically active compounds were identified on the basis of their analytical data and spectroscopic data, such as [α]58920, IR, 1H NMR, 13C NMR, MS and elementary analysis. The photosynthesis of chiral butyrolactones and its mechanism were discussed in detail.  相似文献   

18.
The cationic cluster complexes [Ru3(μ‐H)(μ‐κ2N,C‐L1 Me)(CO)10]+ ( 1 +; HL1 Me=N‐methylpyrazinium), [Ru3(μ‐H)(μ‐κ2N,C‐L2 Me)(CO)10]+ ( 2 +; HL2 Me=N‐methylquinoxalinium), and [Ru3(μ‐H)(μ‐κ2N,C‐L3 Me)(CO)10]+ ( 3 +; HL3 Me=N‐methyl‐1,5‐naphthyridinium), which contain cationic N‐heterocyclic ligands, undergo one‐electron reduction processes to become short lived, ligand‐centered, trinuclear, radical species ( 1 – 3 ) that end in the formation of an intermolecular C? C bond between the ligands of two such radicals, thus leading to neutral hexanuclear derivatives. These dimerization processes are selective, in the sense that they only occur through the exo face of the bridging ligands of trinuclear enantiomers of the same configuration, as they only afford hexanuclear dimers with rac structures (C2 symmetry). The following are the dimeric products that have been isolated by using cobaltocene as reducing agent: [Ru6(μ‐H)26‐κ4N2,C2‐(L1 Me)2}(CO)18] ( 5 ; from 1 +), [Ru6(μ‐H)26‐κ4N2,C2‐(L2 Me)2}(CO)18] ( 6 ; from 2 +), and [Ru6(μ‐H)24‐κ8N2,C6‐(L3 Me)2}(CO)18] ( 7 ; from 3 +). The structures of the final hexanuclear products depend on the N‐heterocyclic ligand attached to the starting materials. Thus, although both trinuclear subunits of 5 and 6 are face‐capped by their bridging ligands, the coordination mode of the ligand of 5 is different from that of the ligand of 6 . The trinuclear subunits of 7 are edge‐bridged by its bridging ligand. In the presence of moisture, the reduction of 3 + with cobaltocene also affords a trinuclear derivative, [Ru3(μ‐H)(μ‐κ2N,C‐L3′ Me)(CO)10] ( 8 ), whose bridging ligand (L3′ Me) results from the formal substitution of an oxygen atom for the hydrogen atom (as a proton) that in 3 + is attached to the C6 carbon atom of its heterocyclic ligand. The results have been rationalized with the help of electrochemical measurements and DFT calculations, which have also shed light on the nature of the odd‐electron species, 1 – 3 , and on the regioselectivity of their dimerization processes. It seems that the sort of coupling reactions described herein requires cationic complexes with ligand‐based LUMOs.  相似文献   

19.
tBu2P? P?P(X)tBu2 Ylides (X = Cl, Br, I) by Halogenation of [tBu2P]2P? SiMe3 [tBu2P]2P? SiMe3 1 with halogenating agents as Br2, I2, Br-succinimide, CCl4, CBr4, CI4 or C2Cl6 via cleavage of the Si? P bond in 1 produces the ylides tBu2P? P?P(X)tBu2 (X = Cl, Br, I). This proceeds independent from the formerly known pathway – [tBu2P]2PLi + 1,2-dibromoethane – and shows that the Li-phosphide must not be present as a necessary requirement for the formation of ylides.  相似文献   

20.
The phosphines L1PPh2 (1) and L2PPh2 (2) containing different Y,C,Y‐chelating ligands, L1 = 2,6‐(tBuOCH2)2C6H3? and L2 = 2,6‐(Me2NCH2)2C6H3?, were treated with PdCl2 and di‐µ‐chloro‐bis[2‐[(N,N‐dimethylamino)methyl]phenyl‐C,N]‐dipalladium(II) and yielded complexes trans‐{[2,6‐(tBuOCH2)2C6H3]PPh2}2PdCl2 (3), {[2,6‐(Me2NCH2)2C6H3]PPh2} PdCl2 (4), {[2,6‐(tBuOCH2)2C6H3]PPh2}Pd(Cl)[2‐(Me2NCH2)C6H4] (5) and {[2,6‐(Me2NCH2)2C6H3]PPh2}Pd(Cl)[2‐(Me2NCH2)C6H4] (6) as the result of different ability of starting phosphines 1 and 2 to complex PdCl2. Compounds 3–6 were characterized by 1H, 13C, 31P NMR spectroscopy and ESI‐MS. The molecular structures of 3,4 and 6 were also determined by X‐ray diffraction analysis. The catalytic activity of complexes 3–6 was evaluated in the Suzuki‐Miyaura cross‐coupling reaction. Copyright © 2010 John Wiley & Sons, Ltd.  相似文献   

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