首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 46 毫秒
1.
Ligand Behaviour of P‐functional Organotin Halides: Nickel(II), Palladium(II), and Platinum(II) Complexes with Me2(Cl)SnCH2CH2PPh2 Me2(Cl)SnCH2CH2PPh2 ( 1 ) reacts with NiII, PdII, and PtII halides in molar ratio 2 : 1 forming the complexes [MX2{PPh2CH2CH2Sn(Cl)Me2}2] (M = Ni, Pd, Pt; X = Cl, Br) ( 3 – 6 , 9 , 10 ) ( 7 , 8 : M = Ni; Br instead of Cl). The nickel complexes were isolated and characterized both as the planar ( 3 , 5 , 7 ) and the tetrahedral ( 4 , 6 , 8 ) isomer. Crystal structure analyses and NMR data indicate for the planar nickel complexes 3 , 5 , 7 and [MCl2{PPh2CH2CH2Sn(Cl)Me2}2] ( 9 : M = Pd; 10 : M = Pt) the existence of intra and intermolecular M–Hal…Sn bridges. In a ligand : metal molar ratio of 3 : 1 the complexes [MéCl{PPh2CH2CH2SnCl2Me2}{PPh2CH2CH2Sn(Cl)Me2}2] ( 11 : M = Pd; 12 : M = Pt) are formed which represent intramolecular ion pairs. By dehalogenation of [PdCl2{PPh2CH2CH2Sn(Cl)Me2}2] ( 9 ) with sodium amalgam and graphite potassium (C8K), respectively, the palladacycles cis‐[Pd{PPh2CH2CH2SnMe2}2] ( 13 ) and trans‐[Pd(Cl)PPh2CH2CH2SnMe2{PPh2CH2CH2Sn(Cl)Me2}] ( 14 ) are formed. From the compounds 1 , 3 , 9 , 11 , and 12 the crystal structures are determined. All compounds are characterized by 1H, 31P, and 119Sn NMR spectroscopy.  相似文献   

2.
Some new diorganotin(IV) complexes of heterocyclic dithiocarbamate having general formula R2Sn(Cl)S2CNR'2 and R2Sn(S2CNR'2)2 [R = 2‐F‐Bz, 3‐Cl‐Bz; NR'2 = N(CH2CH2)2NMe, N(CH2CH2)2NEt, and N(CH2CH2)2NBz] have been prepared, respectively. Elemental analyses, IR, and NMR spectral data characterized all compounds. The crystal structures of (2‐F‐Bz)2Sn(Cl)S2CN(CH2CH2)2NEt 2 and (3‐Cl‐Bz)2Sn[S2CN(CH2CH2)2NEt]2 ⋅ 0.5 HN(CH2CH2)2NH 5 were determined by single crystal X‐ray diffractometer. In the crystal of complex 2 , the tin atom is rendered five‐coordination in a trigonal bipyramidal configuration by coordinating with S atoms of dithiocarbamate groups. For complex 5 , the central Sn atom exists in a skew‐trapezoidal planar geometry defined by two asymmetrically coordinated dithiocarbamate ligands and two 3‐chlorobenzyl groups. © 2005 Wiley Periodicals, Inc. 16:271–277, 2005; Published online in Wiley InterScience ( www.interscience.wiley.com ). DOI 10.1002/hc.20096  相似文献   

3.
Reaction of Bis(2-mercaptoethyl)phosphines with Organotin Compounds. Molecular Structure of a Tin Containing Sixteen-membered Ring The reaction of bis(2-mercaptoethyl)phosphine with di-t-butyltin dimethoxide yields mixture of oligomers of the type [t-Bu2Sn(SCH2CH2)2Pr]n (R ? Me, Ph) from which the trans-configurated dimers (n = 2) have been isolated. By the reaction with sulphur and selenium, respectively, these dimers were transformed to the corresponding thioxo and selenoxo derivatives. The sixteen-membered ring trans-[t-Bu2Sn(SCH2CH2)2P(S)Ph]2 crystallizes in the space group P21/n with the unit cell dimensions a 1350.9, b 1310.2, c 1500.3 pm, β 96.36° and does not exhibit any intramolecular Sn? P interaction: The 1,5-diorgano-1-chloro-5-elementa-1-stanna(IV)-bicyclo-[3.3.01,5]octanes R(Cl)Sn(SCH2CH2)2E ( 6 , R ? Ph, E ? PPh; 7 , R ? Ph, E ? NMe) have been prepared from the corresponding sodium dithiolates and phenyltrichlorostannane. The transannulare Sn? P and Sn? N interactions in 6 and 7 are confirmed by 31P and 119Sn NMR investigations.  相似文献   

4.
Alternative Ligands. XXXV. Syntheses of Bidentate P‐Donor/Sn‐Acceptor Ligands: Coordination Experiments with Cp*Rh(CO)2 and CpRh(C2H4)2 Donor/acceptor ligands Me2Sn(CH2CH2PMe2)2 ( 1 ) and Me2Sn(OCH2PMe2)2 ( 2 ) have been prepared by radical reaction of Me2PVi with Me2SnH2 and by substitution of chlorine in Me2SnCl2 or of ethoxy groups in Me2Sn(OEt)2 by MOCH2PMe2 (M = Li, Na) and HOCH2PMe2, respectively. 2 cannot be isolated in pure form from the product mixture because, due to condensation reactions, the “ladder structure” [Me2Sn(OCH2PMe2)2OSnMe2]2 ( 3 ) is formed. The molecular structure of 3 was determined by X‐ray diffraction studies of single crystals. Attempts to produce the thiophosphoryl derivative of 3 result in the degradation of the ladder structure giving the thermally labile phosphane sulfide Me2Sn(OCH2P(S)Me2)2. Ligands 1 and 2 besides Me2PCH2CH2SnMe3 ( 4 ) have been used for the preparation of rhodium(I) complexes from Cp*Rh(CO)2 ( 5 ) or CpRh(C2H4)2 ( 10 ) as educts. The thermal reaction of 5 with 4 yields Cp*Rh(CO)PMe2CH2CH2SnMe3 ( 6 ), that of 5 with 1 a mixture of the mononuclear derivative Cp*Rh(CO) · PMe2CH2CH2SnMe2CH2CH2PMe2 ( 7 ) and the binuclear complex [Cp*Rh(CO)PMe2CH2CH2]2SnMe2 ( 8 ). The related system [Cp*Rh(CO)PMe2CH2O]2SnMe2 produced by reaction of 5 with 2 can only be detected in solution but, because of some side‐products, was not fully characterized. From 10 and 4 a mixture of mono‐ and disubstituted products, CpRh(C2H4)PMe2CH2CH2SnMe3 ( 11 ) and CpRh(PMe2CH2CH2SnMe3)2 ( 12 ), is obtained. Reaction of 1 with 10 yields a mixture of the complexes CpRh(C2H4)PMe2CH2CH2SnMe2CH2CH2PMe2 ( 13 ) and CpRh(Me2CH2CH2)2SnMe2 ( 14 ). Some of the NMR data (13C, δδSn) of 14 can be interpreted in terms of the expected Rh → Sn interaction. A definite proof by X‐ray diffraction on single crystals, so far, was not possible.  相似文献   

5.
Dimethyl(methanesulfinyl)sulfonium Hexafluorometallates (CH3)2SS(O)CH3+MF6? (M = As, Sb) and the Crystal Structure of Methanesulfinylchloride CH3S(O)Cl [1] The preparation of dimethyl(methanesulfinyl)sulfoniumhexafluorometallates (CH3)2SS(O)CH3+MF6? (M = As, Sb) and the spectroscopic characterization of the new thiosulfonium salts are described. Alternatively they can be obtained from methylmethanethiosulfinate by methylation. In addition the crystal structure of methanesulfinylchloride CH3S(O)Cl at 113 K is reported. The compound crystallizes in the monoclinic space group P21/n with a = 528.2(1), b = 829.2(2), c = 880.9(2) pm, β = 90.48(2)° and Z = 4.  相似文献   

6.
Herein, we report the syntheses of silicon‐ and tin‐containing open‐chain and eight‐membered‐ring compounds Me2Si(CH2SnMe2X)2 ( 2 , X=Me; 3 , X=Cl; 4 , X=F), CH2(SnMe2CH2I)2 ( 7 ), CH2(SnMe2CH2Cl)2 ( 8 ), cyclo‐Me2Sn(CH2SnMe2CH2)2SiMe2 ( 6 ), cyclo‐(Me2SnCH2)4 ( 9 ), cyclo‐Me(2?n)XnSn(CH2SiMe2CH2)2SnXnMe(2?n) ( 5 , n=0; 10 , n = 1, X= Cl; 11 , n=1, X= F; 12 , n=2, X= Cl), and the chloride and fluoride complexes NEt4[cyclo‐ Me(Cl)Sn(CH2SiMe2CH2)2Sn(Cl)Me?F] ( 13 ), PPh4[cyclo‐Me(Cl)Sn(CH2SiMe2CH2)2Sn(Cl)Me?Cl] ( 14 ), NEt4[cyclo‐Me(F)Sn(CH2SiMe2CH2)2Sn(F)Me?F] ( 15 ), [NEt4]2[cyclo‐Cl2Sn(CH2SiMe2CH2)2SnCl2?2 Cl] ( 16 ), M[Me2Si(CH2Sn(Cl)Me2)2?Cl] ( 17 a , M=PPh4; 17 b , M=NEt4), NEt4[Me2Si(CH2Sn(Cl)Me2)2?F] ( 18 ), NEt4[Me2Si(CH2Sn(F)Me2)2?F] ( 19 ), and PPh4[Me2Si(CH2Sn(Cl)Me2)2?Br] ( 20 ). The compounds were characterised by electrospray mass‐spectrometric, IR and 1H, 13C, 19F, 29Si, and 119Sn NMR spectroscopic analysis, and, except for 15 and 18 , single‐crystal X‐ray diffraction studies.  相似文献   

7.
The 1H, 13C, and 119Sn NMR data of seven stannabicycloundecanes of the type RSn(CH2CH2CH2)3N (1, R = Cl; 2 , R = Br; 3 , R = I; 4 , R = OH; 5 , R = SPh; 6 , R = Me; 7 , R = Sn(CH2CH2CH2)3N) are reported. From 1H NMR coalescence data at low temperature the free activation enthalpies for the racemisation of the bicyclo[3.3.3]skeleton were estimated to be 37 ± 1 kJ/mol. They are independent of the substituent R. However, it decreases when the tin atom is replaced by silicon for R = Me.  相似文献   

8.
The Reactions of cyclo ‐Tristannazanes, [(CH3)2Sn–N(R)]3, with the Trimethyl Derivatives of Aluminium, Gallium, and Indium The cyclo‐tristannazanes [Me2Sn–N(R)]3 (with R = Me, nPr, iPr, iBu) have been prepared from Me2SnCl2 and LiN(H)R in a 1 : 2 molar ratio. With MMe3 (M = Al, Ga, In) they form the dimeric dimethylmetal trimethylstannyl(alkyl)amides [Me2M–N(R)SnMe3]2 in good yields. The mass, NMR (1H, 13C, 119Sn), and vibrational spectra are discussed and compared with the spectra of the tristannazanes. Thermolysis of the gallium amidocompounds splits SnMe4 to form methylgallium imido derivatives with cage structures. The crystal structures of selected stannylamido complexes have been determined by X‐ray structure analysis.  相似文献   

9.
The structure of [(CF3N2NMe)Mo(CH2SiMe3)2] (in which (CF3N2NMe)2? is [(3‐CF3C6H4NCH2CH2)2NMe]2?) is approximately trigonal bipyramidal with one axial and one equatorial alkyl ligand. Heating of solutions of [(CF3N2NMe)Mo(CH2SiMe3)2] in [D6]benzene in the presence of five equivalents of 2‐butyne led to diamagnetic [(CF3N2NMe)Mo(CHSiMe3)(η2‐MeC?CMe)], whose structure is approximately square pyramidal with the alkyne occupying the axial site. Addition of one equivalent of cyclohexene sulfide to [(CF3N2NMe)Mo(CH2SiMe3)2] at room temperature produced the diamagnetic, dimeric molybdenum(IV) sulfido complex, [{(CF3N2NMe)MoS}2]. This complex is composed of two approximately trigonal bipyramidal centers, each containing one axial and one equatorial sulfur atom. Oxidation of [(CF3N2NMe)Mo(CH2SiMe3)2] with hexachloroethane resulted in formation of tetramethylsilane, HCl, and the sparingly soluble, red alkylidyne complex, [{(CF3N2NMe)Mo(CSiMe3)Cl}2]. This complex forms a dimer through bridging chlorides. The oxidation reactions of [(CF3N2NMe)Mo(CH2SiMe3)2] with 2‐butyne, cyclohexene sulfide, or C2Cl6 are all proposed to proceed by α‐hydrogen abstraction in the MoVI species to yield (initially) the Mo?CHSiMe3 species and tetramethylsilane.  相似文献   

10.
Synthesis and Structure Analysis of (tBuP)4Sn(CH3)2 and (CH3)2Sn[(tBu)P? P(tBu)]2Sn(CH3)2 The diphosphides K2[(tBu)P? (tBuP)2? P(tBu)] 7 or K2[(tBu)P? P(tBu)] 8 react with (CH3)2SnCl2 in a molar ratio of 1 : 1 to form the binary 5-membered ring system P4Sn 4 a and the 6-membered ring system Sn(P2)2Sn 5 a respectively. When (CH3)2SnCl2, however, is treated with 8 in a molar ratio of 2 : 1 the 4-membered ring system P3Sn 2 a is formed which includes the fragmentation of the intermediate K2[(CH3)2Sn ((tBu)P? P(tBu))2] 9. 4 a and 5 a could be obtained in a pure form and characterized NMR spectroscopically and by X-ray structure analyses; 2 a was identified only NMR spectroscopically.  相似文献   

11.
On Polystannanes. III. 1,2-Dichloro-tetramethyl-distannane. Forming a Sn? Sn-connected Helical Double Chain Structure [(…?SnMe2Cl…?SnMe2? Cl…?)]2 The crystal structure of the title compound has been determined at ?160°C and refined to R = 0.071 (bond lengths Sn? Sn 277.0(2), Sn? Cl 244.2(3) and 244.8(3), Sn? C 214(2) pm). Intermolecular Sn…?Cl connection (324.0(3) and 329.2(3) pm) results in a double chain structure. 119Sn-NMR spectra in CH2Cl2 and acetone exhibit a movable temperature dependent coordination of acetone at the distannane (1J(119Sn? 119Sn) 8000 to 9000 Hz; appr. 5000 Hz in CH2Cl2).  相似文献   

12.
(CH3)2SBr2 – Reactions and Structures (CH3)2SBr2 ( 1 ) is a donor acceptor complex (8-S-3 + 10-Br-2) which reacts with (CH3)2S(?O)NSi(CH3)3 to yield [(CH3)2S(O)?N? S(CH3)2]+Br? ( 2 ). With SbBr3 (CH3)2SBr+SbBr4? ( 3 ) can be isolated. 1 crystallizes monoclinic in the space group P21/c with a = 733.8, b = 734.2, c = 1132.7 pm, β = 92.8° and Z = 4. 2 crystallizes in the orthorhombic space group Pnma with a = 967.2, b = 793.3, c = 1168.3 pm and Z = 4. The SBr and BrBr force constants of 1 are compared with those of S2Br2, 3 and Br2 resp. The nmr and mass spectra of 1 and 2 are communicated.  相似文献   

13.
4-Methyl-1,2,3,5-dithiadiazolium Salts. Crystal Structures of(CH3CN2S2)5[CoCl4]Cl3 and (CH3CN2S2)Cl 4-Methyl-1,2,3,5-dithiadiazolium tetrachlorocobaltate trichloride, (CH3CN2S2)5[CoCl4]Cl3, was obtained by reaction of trithiazyl chloride, (NSCl)3, with CoCl2 in acetonitrile; it forms brown, moisture sensitive crystals. With tetraphenylarsonium chloride in CH2Cl2 it yields yellow crystalline (CH3CN2S2)Cl and (AsPh4)2CoCl4. The IR spectra of the title compounds are reported and assigned. Theit crystal structures were determined by X-ray diffraction. Crystal data: (CH3CN2S2)5[CoCl4]Cl3, orthorhombic, P212121, Z = 4, a = 830, b = 1603, c = 2443 pm at 180 K (structure determination with 1787 observed independent reflexions, R = 0.070); (CH3CN2S2)Cl, triclinic, P212121, Z = 4, a = 749, b = 819, c = 1015 pm, α = 84.9, β = 67.4, γ = 84.6° at 296 K (2653 reflexions, R = 0.040). Both compounds are ionic, having chloride and distorted tetrahedral CoCl42? anions and planar 4-methyl-1,2,3,5-dithiadiazolium cations which nearly fulfill C2v symmetry. The (CH3CN2S2)5[CoCl4]Cl3 structure contains five symmetry independent cations, (CH3CN2Cl has two symmetry independent cations, all being nearly equal. No nitrogen atom but all sulfur atoms of the cations have contact with three to five chlorine atoms, and as a rule there is one chloride ion which is coplanar with the cation and exhibits rather short distances to both S atoms (288 to 309 pm); therefore, the positive charge of the cations must be concentrated on the sulfur atoms.  相似文献   

14.
Synthesis and X‐Ray Structure Determination of iso ‐Butylimido Galliummethyl, [CH3Ga–NCH2CH(CH3)2]6 The thermal decomposition of [Me2Ga–N(iBu)SnMe3]2 (prepared by the reaction of [Me2SnNiBu]3 with GaMe3 in a 1:3 molar ratio) in an evacuated, sealed tube at 160°C forms [MeGaNiBu]6 in high yield and SnMe4. Mass, 1H and 13C NMR as well as some IR and Raman spectroscopic data are given and the crystal structure of this cage molecule with a hexagonal prismatic Ga6N6 skeleton has been determined.  相似文献   

15.
Synthesis and Crystal Structure of the Heterobimetallic Diorganotindichloride (FcN, N)2SnCl2 (FcN, N: (η5‐C5H5)Fe{η5‐C5H3[CH(CH3)N(CH3)CH2CH2NMe2]‐2}) The heterobimetallic title compound [(FcN, N)2SnCl2] ( 1 ) was obtained by the reaction of [LiFcN, N] with SnCl4 in the molar ratio 1:1 in diethylether as a solvent. The two FcN, N ligands in 1 are bound to Sn through a C‐Sn σ‐bond; the amino N atoms of the side‐chain in FcN, N remain uncoordinated. The crystals contain monomeric molecules with a pseudo‐tetrahedral coordination at the Sn atom: Space group P21/c; Z = 4, lattice dimensions at —90 °C: a = 9.6425(2), b = 21.7974(6), c = 18.4365(4) Å, β = 100.809(2)°, R1obs· = 0.051, wR2obs· = 0.136.  相似文献   

16.
Ten organotin derivatives with dithiocarbamates of the formulae (4‐NCC6H4CH2)2Sn(S2CNEt2)2 (1), (4‐NCC6H4CH2)2Sn(S2CNBz2)2 (2), (4‐NCC6H4CH2)2Sn[S2CN(CH2CH2)2NCH3]2 (3), (2‐ClC6H4CH2)2 Sn(S2CNEt2)2 (4), (2‐ClC6H4CH2)2Sn(S2CNBz2)2 (5), (4‐NCC6H4CH2)2Sn(Cl)S2CNEt2 (6), (4‐NCC6H4CH2)2Sn(Cl)S2CNBz2 (7), (4‐NCC6H4CH2)2Sn(Cl)S2CN(CH2CH2)2NCH3 (8), (2‐ClC6H4CH2)2 Sn(Cl)S2CNEt2 (9) and (2‐ClC6H4CH2)2Sn(Cl)S2CNBz2 (10) have been prepared. All complexes were characterized by elemental analyses, IR and NMR. The crystal structures of complexes 1 and 10 were determined by X‐ray single crystal diffraction. For complex 1, the central tin atom exists in a skew‐trapezoidal planar geometry defined by two asymmetrically coordinated dithiocarbamate ligands and two 4‐cyanobenzyl groups. In addition, because of the presence of close intermolecular non‐bonded contacts, complex 1 is a weakly‐bridged dimer. In complex 10, the central tin atom is rendered pentacoordinated in a distorted trigonal bipyramidal configuration by coordinating with S atoms derived from the dithiocarbamate ligand. In vitro assays for cytotoxicity against five human tumor cell lines (MCF‐7, EVSA‐T, WiDr, IGROV and M226) furnished the significant toxicities of the title complexes. Copyright © 2006 John Wiley & Sons, Ltd.  相似文献   

17.
Formation and Reactions of the CH2Li‐Derivatives of tBu2P–P=P(CH3)tBu2 and (Me3Si)tBuP–P=P(CH3)tBu2 With nBuLi, (Me3Si)tBuP–P=P(CH3)tBu2 ( 1 ) and tBu2P–P=P(CH3)tBu2 ( 2 ) yield (Me3Si)tBuP–P=P(CH2Li)tBu2 ( 3 ) and tBu2P–P=P(CH2Li)tBu2 ( 4 ), wich react with Me3SiCl to give (Me3Si)tBuP–P=P(CH2–SiMe3)tBu2 ( 5 ) and tBu2P–P=P(CH2–SiMe3)tBu2 ( 6 ), respectively. With tBu2P–P(SiMe3)–PtBuCl ( 7 ), compound 3 forms 5 as well as the cyclic products [H2C–P(tBu)2=P–P(tBu)–PtBu] ( 8 ) and [H2C–P(tBu)2=P–P(PtBu2)–P(tBu)] ( 9 ). Also 3 forms 8 with tBuPCl2. The cleavage of the Me3Si–P‐bond in 1 by means of C2Cl6 or N‐bromo‐succinimide yields (Cl)tBuP–P=P(CH3)tBu2 ( 10 ) or (Br)tBuP–P=P(CH3)tBu2 ( 11 ), resp. With LiP(SiMe3)2, 10 forms (Me3Si)2P–P(tBu)–P=P(CH3)tBu2 ( 12 ), and Et2P–P(tBu)–P=P(CH3)tBu2 ( 13 ) with LiPEt2. All compounds are characterized by 31P NMR Data and mass spectra; the ylide 5 and the THF adduct of 4 additionally by X‐ray structure analyses.  相似文献   

18.
Chemical shift and scalar coupling constant information has been obtained from the 1H, 13C, 29Si and 119Sn NMR spectra of a series of compounds (CH3)3SnCH2M(CH3)3, where M = Sn, Ge, Si or C and with one or two CH3? (Sn) groups replaced by Cl, Br or I. The (CH3)3M and (CH3)3MCH2 groups appear to have opposite substituent effects on chemical shifts.  相似文献   

19.
Preparation, Spectroscopic Characterization, and Crystal Structures of [(C5H5N)2CH2][PtCl5(SCN)] and cis -[(C5H5N)2CH2][PtCl4(SCN)2] By treatment of [PtCl6]2– with SCN in aqueous solution a mixture of chlorothiocyanatoplatinates(IV) is formed, from which [PtCl5(SCN)]2– and cis-[PtCl4(SCN)2]2– have been separated by ion exchange chromatography on diethylaminoethyl cellulose. X-Ray structure determinations on single crystals of [(C5H5N)2CH2][PtCl5(SCN)] ( 1 ) (tetragonal, space group P 43, a = 7.687(1), c = 29.698(4), Z = 4) and cis-[(C5H5N)2CH2][PtCl4(SCN)2] ( 2 ) (monoclinic, space group P 21/n, a = 11.2467(9), b = 15.0445(10), c = 11.3179(13), β = 92.840(9)°, Z = 4) show, that the thiocyanate groups are coordinated via S atoms with average Pt–S distances of 2.339 Å and Pt–S–C angles of 104.7° up to 107.1°. Using the molecular parameters of the X-ray determinations the low temperature (10 K) IR and Raman spectra have been assigned by normal coordinate analyses. The valence force constants of the S–Pt–Cl˙ axes are fd(PtS) = 1.81 ( 1 ) and 1.87 ( 2 ), fd(PtCl × ) = 1.77 ( 1 ) and 1.81 ( 2 ), of the Cl–Pt–Cl axes are fd(PtCl) = 1.93 ( 1 ) and 1.90 mdyn/Å ( 2 ). The 195Pt NMR spectra from dichlormethane solutions exhibit each one sharp signal at 3975.6 ( 1 ) and 3231.6 ppm ( 2 ), respectively.  相似文献   

20.
Synthesis and Structural Studies of Aluminum Dialkylamines and Dialkylamides: N‐Chirality of (CH3)3AlNHRR′ and cis‐trans ‐Isomerism at X2AlNRR′ (X = CH3, Cl, H) Aluminum dialkylamines and dialkylamides were prepared from Al(CH3)3 and NH(CH3)R′ (R′: –C2H5, –tC4H9) and characterized by elemental analyses, 1H‐, 13C‐, and 27Al‐NMR spectroscopy. The crystal structures of [(CH3)2AlN(CH3)(–tC4H9)]2 ( IV ), [Cl2AlN(CH3)(C2H5)]2 ( V ), and [H2AlN(CH3)(C2H5)] ( VI‐trans and VI‐cis ) are discussed.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号