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1.
报道了3种不同结构的三齿N-配体以及与铑形成的顺二羰基配合物.研究表明,正方平面顺二羰基铑配合物在遇热条件下,其配体中未参与配位的授体N原子可取代它的一个端羰基而形成新的三齿配位结构.而在CO气氛下,三齿配位结构回到二齿配位状态.正方平面铑配合物的这一特殊分子内取代可逆反应过程,对于研究这类配合物结构、性能及催化作用均有重要的意义.非正方平面顺二羰基铑配合物则不发生上述分子内取代反应.利用IR和XPS对上述反应进行了表征.  相似文献   

2.
邹瑾  潘平来  袁国卿 《化学通报》2002,65(3):191-193
本文采用丙二酸锂为配体,与四羰基二氯二铑形成双齿配位的顺二羰基铑配合物,研究表明,在催化甲醇羰基化制乙酸的反应中,该配合物显示出高的活性和选择性。  相似文献   

3.
我们曾报道一系列含有两种不同配位基团的高分子共聚物与四羰基二氯二铑形成的顺二羰基铑(Ⅰ)配合物。这些配合物在催化甲醇羰基化反应中显示出高催化活性和高稳定性。本文采用4-乙烯吡啶(Y)和丙烯酸甲酯(B)共聚物为配体,对其与四羰基二氯二铑形成的配合物(YBRh)进行了表征。对该系列配合物催化甲醇羰基化生成乙酸的性能进行了评价。  相似文献   

4.
吡啶甲酸锂-铑(Ⅰ)配合物催化甲醇羰基化反应   总被引:3,自引:0,他引:3  
本文采用吡啶甲酸或吡啶二甲酸锂盐为配体,与铑形成顺二羰基配合物,用于催化甲醇羰基化制乙酸。研究表明,与通常的铑配合物相比,该类双金属配合物无论在催化活性或乙酸生成的选择性方面均有明显的提高。  相似文献   

5.
本文将聚4-乙烯吡啶(PVPy)、聚1-甲基-4-乙烯吡啶季铵碘(PVPyMe^+I^-)和4-乙烯吡啶/1-甲基-4-乙烯吡啶季铵碘共聚物[P(VPy-VPyMe^+I^-)]分别与四羰基二氯二铑反应制备成高分子铑(I)催化剂, 并考察了它们各自在甲醇羰化反应中的催化行为。结合IR光谱对这些催化剂结构的分析研究表明, 以上4-乙烯吡啶类高分子链上所含的功能基各自与铑(I)配合物离子之间以不同的链联方式所产生的不同结构的活性物种对催化反应性能有着显著的影响, 具有双配位的螯合型稳定结构的Rh(I)/PVPy催化剂, 表现出较差的催化反应活性, 而离子键合型的Rh(I)/PVPyMe^+I^-和杂键合型的Rh(I)/P(VPy-VPyMe^+I^-)催化剂均表现较佳的反应性能, 特别是Rh(I)/P(VPy-VPyMe^+I^-),由于其形成具有更强亲核性的五配位中间过渡态参与反应过程, 从而在较大程度上提高了催化反应速率。  相似文献   

6.
本文将聚4-乙烯吡啶(PVPy)、聚1-甲基-4-乙烯吡啶季铵碘(PVPyMe^+I^-)和4-乙烯吡啶/1-甲基-4-乙烯吡啶季铵碘共聚物[P(VPy-VPyMe^+I^-)]分别与四羰基二氯二铑反应制备成高分子铑(I)催化剂, 并考察了它们各自在甲醇羰化反应中的催化行为。结合IR光谱对这些催化剂结构的分析研究表明, 以上4-乙烯吡啶类高分子链上所含的功能基各自与铑(I)配合物离子之间以不同的链联方式所产生的不同结构的活性物种对催化反应性能有着显著的影响, 具有双配位的螯合型稳定结构的Rh(I)/PVPy催化剂, 表现出较差的催化反应活性, 而离子键合型的Rh(I)/PVPyMe^+I^-和杂键合型的Rh(I)/P(VPy-VPyMe^+I^-)催化剂均表现较佳的反应性能, 特别是Rh(I)/P(VPy-VPyMe^+I^-),由于其形成具有更强亲核性的五配位中间过渡态参与反应过程, 从而在较大程度上提高了催化反应速率。  相似文献   

7.
[顺-二羰基(N-2-(2-吡啶)乙基对取代苯胺)铑]的四苯硼酸盐作为催化剂,用于催化甲醇羰基化反应,在温和的条件下,可顺利催化甲醇羰基化反应得到乙酸和乙酸甲酯而无其它副产物.若以甲醇和乙酸的混合液作反应物,则得到乙酸酐和乙酸甲酯.即使在大量水存在下,也仅有微量的水煤气转换反应发生.实验证明对位取代基团的电子效应对铑配合物的催化活性影响甚微.在不同位置以不同链长相联的二吡啶配体对铑阳离子配合物性能的影响是明显的.其中α,α'-联吡啶铑阳离子结构不利于催化反应的进行.由此证明,作为催化剂活性物种除必须的Rh-CO键存在外,配体的空间结构是影响配合物活性的决定因素.羰基化发生在碘甲烷的氧化加成与乙酰碘的还原消除之间,同时还伴有一个在配位的乙酰基与铑的顺-空配位之间甲基的1,2移动变化.  相似文献   

8.
螯合型高分子铑配合物催化甲醇羰基化反应的机理探讨   总被引:4,自引:0,他引:4  
螯合型高分子铑配合物催化甲醇羰基化反应的机理探讨潘平来,柳忠阳,王晓筠,黄茂开,袁国卿(中国科学院化学研究所,北京100080)1引言甲醇在铑催化剂的作用下,与一氧化碳反应羰基化为乙酸,是一个重要的基本有机合成,反应。在为数众多的催化剂中,锗的配合物...  相似文献   

9.
采用2-乙烯吡啶-丁烯酮共聚物为配体,与四羰基二氯二铑形成顺二羰基铑(I)配合物(PYBRh),用于催化甲醇羰基化制备乙酸和乙酸酐的反应动力学研究。结果表明,其对反应物甲醇和一氧化碳均为零级反应,在一定范围内,对高分子铑催化剂及助催化剂碘甲烷均为一级反应,极性溶剂的加入可以提高甲醇羰基化速度。通过实验结果计算了其反应活化能,活化熵和热焓研究证明其反应机理与小分子铑催化剂相似。  相似文献   

10.
以交联或非交联的丁烯酮2-乙烯吡啶共聚物为配体的新型铑配合物催化剂能在较温和的条件下直接催化甲醇羰基化为乙酸, 实验结果表明, 这类新型高聚物铑配合物具有螯合型顺-二羰基铑(I)的结构特征, 并且有良好的热稳定性及高的催化活性和选择性, 其周转率可达10^4摩尔甲醇转化(摩尔铑)^-^1(时)^-^1, 产物除乙酸甲酯和乙酸外, 无其它副产物, 选择性近100%。  相似文献   

11.
Phosphine modified rhodium complexes are currently the topic of considerable research as methanol carbonylation catalysts, but often suffer from poor stability. This paper reports on an investigation into how coordination mode affects the elimination of phosphonium salts from rhodium complexes, namely [trans-RhCl(CO)(PPh(3))(2)] , [RhCl(CO)(dppe)] , [RhCl(CO)(dppb)](2), [Rh(TRIPHOS)(CO)(2)]Cl . These complexes are all potential pre-catalysts for methanol carbonylation. The reaction of these complexes with methyl iodide at 140 degrees C under both N(2) and CO atmospheres has been studied and has revealed clear differences in the stability of the corresponding Rh(iii) complexes. In contrast to both monomeric and dimeric that react cleanly with CH(3)I to give stable Rh(iii) acetyl complexes, forms a novel bidentate complex after the elimination of the one arm of the ligand as a quaternised phosphonium salt. The structure of this complex has been determined spectroscopically and using X-ray crystallography. The mechanism of formation of this novel complex has been investigated using (13)CH(3)I and strong evidence that supports a dissociative mechanism as the means of phosphine loss from the rhodium centre is provided.  相似文献   

12.
A solid, silica-supported ionic liquid phase (SILP) rhodium iodide Monsanto-type catalyst system, [BMIM][Rh(CO)2I2]-[BMIM]I-SiO2, exhibits excellent activity and selectivity towards acetyl products in fixed-bed, continuous gas-phase methanol carbonylation.  相似文献   

13.
2-Phosphanylethylcyclopentadienyl lithium compounds, Li[C(5)R'(4)(CH(2))(2)PR(2)] (R = Et, R' = H or Me, R = Ph, R' = Me), have been prepared from the reaction of spirohydrocarbons C(5)R'(4)(C(2)H(4)) with LiPR(2). C(5)Et(4)HSiMe(2)CH(2)PMe(2), was prepared from reaction of Li[C(5)Et(4)] with Me(2)SiCl(2) followed by Me(2)PCH(2)Li. The lithium salts were reacted with [RhCl(CO)(2)](2), [IrCl(CO)(3)] or [Co(2)(CO)(8)] to give [M(C(5)R'(4)(CH(2))(2)PR(2))(CO)] (M = Rh, R = Et, R' = H or Me, R = Ph, R' = Me; M = Ir or Co, R = Et, R' = Me), which have been fully characterised, in many cases crystallographically as monomers with coordination of the phosphorus atom and the cyclopentadienyl ring. The values of nu(CO) for these complexes are usually lower than those for the analogous complexes without the bridge between the cyclopentadienyl ring and the phosphine, the exception being [Rh(Cp'(CH(2))(2)PEt(2))(CO)] (Cp' = C(5)Me(4)), the most electron rich of the complexes. [Rh(C(5)Et(4)SiMe(2)CH(2)PMe(2))(CO)] may be a dimer. [Co(2)(CO)(8)] reacts with C(5)H(5)(CH(2))(2)PEt(2) or C(5)Et(4)HSiMe(2)CH(2)PMe(2) (L) to give binuclear complexes of the form [Co(2)(CO)(6)L(2)] with almost linear PCoCoP skeletons. [Rh(Cp'(CH(2))(2)PEt(2))(CO)] and [Rh(Cp'(CH(2))(2)PPh(2))(CO)] are active for methanol carbonylation at 150 degrees C and 27 bar CO, with the rate using [Rh(Cp'(CH(2))(2)PPh(2))(CO)] (0.81 mol dm(-3) h(-1)) being higher than that for [RhI(2)(CO)(2)](-) (0.64 mol dm(-3) h(-1)). The most electron rich complex, [Rh(Cp'(CH(2))(2)PEt(2))(CO)] (0.38 mol dm(-3) h(-1)) gave a comparable rate to [Cp*Rh(PEt(3))(CO)] (0.30 mol dm(-3) h(-1)), which was unstable towards oxidation of the phosphine. [Rh(Cp'(CH(2))(2)PEt(2))I(2)], which is inactive for methanol carbonylation, was isolated after the methanol carbonylation reaction using [Rh(Cp'(CH(2))(2)PEt(2))(CO)]. Neither of [M(Cp'(CH(2))(2)PEt(2))(CO)] (M = Co or Ir) was active for methanol carbonylation under these conditions, nor under many other conditions investigated, except that [Ir(Cp'(CH(2))(2)PEt(2))(CO)] showed some activity at higher temperature (190 degrees C), probably as a result of degradation to [IrI(2)(CO)(2)](-). [M(Cp'(CH(2))(2)PEt(2))(CO)] react with MeI to give [M(Cp'(CH(2))(2)PEt(2))(C(O)Me)I] (M = Co or Rh) or [Ir(Cp'(CH(2))(2)PEt(2))Me(CO)]I. The rates of oxidative addition of MeI to [Rh(C(5)H(4)(CH(2))(2)PEt(2))(CO)] and [Rh(Cp'(CH(2))(2)PPh(2))(CO)] are 62 and 1770 times faster than to [Cp*Rh(CO)(2)]. Methyl migration is slower, however. High pressure NMR studies show that [Co(Cp'(CH(2))(2)PEt(2))(CO)] and [Cp*Rh(PEt(3))(CO)] are unstable towards phosphine oxidation and/or quaternisation under methanol carbonylation conditions, but that [Rh(Cp'(CH(2))(2)PEt(2))(CO)] does not exhibit phosphine degradation, eventually producing inactive [Rh(Cp'(CH(2))(2)PEt(2))I(2)] at least under conditions of poor gas mixing. The observation of [Rh(Cp'(CH(2))(2)PEt(2))(C(O)Me)I] under methanol carbonylation conditions suggests that the rhodium centre has become so electron rich that reductive elimination of ethanoyl iodide has become rate determining for methanol carbonylation. In addition to the high electron density at rhodium.  相似文献   

14.
铑配合物催化甲醇羰基化反应的性能和机理   总被引:3,自引:0,他引:3  
本文合成了2-丁酸甲酯吡啶与四羰基二氯二铑形成的螯合形配合物,并用X射线光电子能谱(XPS),红外光谱(IR)及核磁共振(NMR)研究确定了其配位结构特征,通过甲醇羰基化制备乙酸的反应揭示了其结构特征对催化剂活性及稳定性的影响,并提出了可能的反应机理。  相似文献   

15.
The rhodium(I) complexes trans‐[Rh(diphos)(CO)Cl] 7 (diphos=pbpb), 8 (diphos=nbpb), and 9 (diphos=cbpb) were synthesized (Scheme 4) and used as catalysts for the carbonylation of MeOH to AcOH (Scheme 1). The trans coordination imposed by the rigid C‐spacer framework of the diphos ligands pbpb, nbpb, and cbpb, demonstrated by 31P‐NMR and IR spectroscopy of 7 – 9 and unambiguously confirmed by single‐crystal X‐ray structure analysis of 7 , improved the thermal stability of the rhodium(I) system under carbonylation conditions and, hence, the catalytic performance of the complexes. For the catalytic carbonylation of MeOH, the active catalyst could be prepared in situ from the mixture of [Rh(CO)2Cl]2 and the corresponding diphos ligand pbpb, nbpb, or cbpb, giving the same results as carbonylation in the presence of the isolated complexes 7, 8 or 9 (see Table). The highest activity was observed for complex 7 (or the mixture [Rh(CO)2Cl]2/pbpb, the catalytic turnover number (TON) being 950 after 15 min (170°, 22 bar).  相似文献   

16.
吡啶甲酸铑阳离子催化甲醇羰基化反应机理的理论计算   总被引:1,自引:0,他引:1  
采用有效核近似从头算方法,在HF/LANL2DZ水平下用Berny优化法,对吡啶甲酸铑阳离子催化剂催化甲醇羰基化反应中各基元反应的中间体、过渡态和产物的几何结构进行了优化,过渡态结构通过振动分析进行了确认;计算了各反应的活化位垒.CH_3OH与CO在吡啶甲酸铑阳离子催化剂的作用下反应分4步进行:(1)CH3I氧化加成反应;(2)羰基重排反应:(3)羰基配位反应;(4)CH_3COI还原消除反应.对于各基元反应,CH3I氧化加成反应位垒最高(167.78kJ/mol),是整个反应过程的决速步骤;羰基重排反应和CH_3COI还原消除反应的活化位垒分别为110.67和62.94 kJ/mol,羰基配位反应的位垒为零.与[Rh(CO)_2I_2]-催化剂相比,吡啶甲酸铑阳离子催化剂具有相同的催化机理,但后者催化剂上各步反应的位垒较低.  相似文献   

17.
The new diphosphine ligands Ph(2)PC(6)H(4)C(O)X(CH(2))(2)OC(O)C(6)H(4)PPh(2) (1: X=NH; 2: X=NPh; 3: X=O) and Ph(2)PC(6)H(4)C(O)O(CH(2))(2)O(CH(2))(2)OC(O)C(6)H(4)PPh(2) (5) as well as the monophosphine ligand Ph(2)PC(6)H(4)C(O)X(CH(2))(2)OH (4) have been prepared from 2-diphenylphosphinobenzoic acid and the corresponding amino alcohols or diols. Coordination of the diphosphine ligands to rhodium, iridium, and platinum resulted in the formation of the square-planar complexes [(Pbond;P)Rh(CO)Cl] (6: Pbond;P=1; 7: Pbond;P=2; 8: Pbond;P=3), [(Pbond;P)Rh(CO)Cl](2) (9: Pbond;P=5), [(P-P)Ir(cod)Cl] (10: Pbond;P=1; 11: Pbond;P=2; 12: Pbond;P=3), [(Pbond;P)Ir(CO)Cl] (13: Pbond;P=1; 14: Pbond;P=2; 15: Pbond;P=3), and [(Pbond;P)PtI(2)] (18: Pbond;P=2). In all complexes, the diphosphine ligands are trans coordinated to the metal center, thanks to the large spacer groups, which allow the two phosphorus atoms to occupy opposite positions in the square-planar coordination geometry. The trans coordination is demonstrated unambiguously by the single-crystal X-ray structure analysis of complex 18. In the case of the diphosphine ligand 5, the spacer group is so large that dinuclear complexes with ligand 5 in bridging positions are formed, maintaining the trans coordination of the P atoms on each metal center, as shown by the crystal structure analysis of 9. The monophosphine ligand 4 reacts with [[Ir(cod)Cl](2)] (cod=cyclooctadiene) to give the simple derivative [(4)Ir(cod)Cl] (16) which is converted into the carbonyl complex [(4)Ir(CO)(2)Cl] (17) with carbon monoxide. The crystal structure analysis of 16 also reveals a square-planar coordination geometry in which the phosphine ligand occupies a position cis with respect to the chloro ligand. The diphosphine ligands 1, 2, 3, and 5 have been tested as cocatalysts in combination with the catalyst precursors [[Rh(CO)(2)Cl](2)] and [[Ir(cod)Cl](2)] or [H(2)IrCl(6)] for the carbonylation of methanol at 170 degrees C and 22 bar CO. The best results (TON 800 after 15 min) are obtained for the combination 2/[[Rh(CO)(2)Cl](2)]. After the catalytic reaction, complex 7 is identified in the reaction mixture and can be isolated; it is active for further runs without loss of catalytic activity.  相似文献   

18.
Reaction of methyl iodide with square planar [kappa(2)-Tp*Rh(CO)(PMe(3))] 1a (Tp* = HB(3,5-Me(2)pz)(3)) at room temperature affords [kappa(3)-Tp*Rh(CO)(PMe(3))(Me)]I 2a, which was fully characterized by spectroscopy and X-ray crystallography. The pseudooctahedral geometry of cationic 2a, which contains a kappa(3)-coordinated Tp* ligand, indicates a reaction mechanism in which nucleophilic attack by Rh on MeI is accompanied by coordination of the pendant pyrazolyl group. In solution 2a transforms slowly into a neutral (acetyl)(iodo) rhodium complex [kappa(3)-Tp*Rh(PMe(3))(COMe)I] 3a, for which an X-ray crystal structure is also reported. Kinetic studies on the reactions of [kappa(2)-Tp*Rh(CO)(L)] (L = PMe(3), PMe(2)Ph, PMePh(2), PPh(3), CO)] with MeI show second-order behavior with large negative activation entropies, consistent with an S(N)2 mechanism. The second-order rate constants correlate well with phosphine basicity. For L = CO, reaction with MeI gives an acetyl complex, [kappa(3)-Tp*Rh(CO)(COMe)I]. The bis(pyrazolyl)borate complexes [kappa(2)-Bp*Rh(CO)(L)] (L = PPh(3), CO) are much less reactive toward MeI than the Tp* analogues, indicating the importance of the third pyrazolyl group and the accessibility of a kappa(3) coordination mode. The results strengthen the evidence in favor of an S(N)2 mechanism for oxidative addition of MeI to square planar d(8) transition metal complexes.  相似文献   

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