Insight into catalytic reduction of CO2 to methane with silanes using Brookhart's cationic Ir(III) pincer complex

被引:10
|
作者
Fang, Shaoqin [1 ]
Chen, Hongcai [1 ]
Wei, Haiyan [1 ]
机构
[1] Nanjing Normal Univ, Sch Chem & Mat Sci, Jiangsu Prov Key Lab NSLSCS, Jiangsu Key Lab Biofunct Mat, Nanjing 210097, Jiangsu, Peoples R China
基金
中国国家自然科学基金;
关键词
N-HETEROCYCLIC CARBENE; CARBON-DIOXIDE HYDROGENATION; EFFECTIVE CORE POTENTIALS; FORMIC-ACID; HOMOGENEOUS HYDROGENATION; RUTHENIUM(II)-CATALYZED HYDROGENATION; SPECTROSCOPIC CHARACTERIZATION; MOLECULAR CALCULATIONS; DENSITY FUNCTIONALS; RUTHENIUM;
D O I
10.1039/c7ra13486j
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Using density functional theory computations, we investigated in detail the underlying reaction mechanism and crucial intermediates present during the reduction of carbon dioxide to methane with silanes, catalyzed by the cationic Ir-pincer complex ((POCOP)Ir(H)(acetone)(+), POCOP = 2,6-bis(dibutylphosphinito)phenyl). Our study postulates a plausible catalytic cycle, which involves four stages, by sequentially transferring silane hydrogen to the CO2 molecule to give silylformate, bis(silyl)acetal, methoxysilane and the final product, methane. The first stage of reducing carbon dioxide to silylformate is the rate-determining step in the overall conversion, which occurs via the direct dissociation of the silane Si-H bond to the C=O bond of a weakly coordinated Ir-CO2 moiety, with a free energy barrier of 29.5 kcal mol(-1). The ionic S-N(2) outer-sphere pathway in which the CO2 molecule nucleophilically attacks at the eta(1)-silane iridium complex to cleave the eta(1)-Si-H bond, followed by the hydride transferring from iridium dihydride [(POCOP)IrH2] to the cation [O=C-OSiMe3](+), is a slightly less favorable pathway, with a free energy barrier of 33.0 kcal mol(-1) in solvent. The subsequent three reducing steps follow similar pathways: the ionic S-N(2) outer-sphere process with silylformate, bis(silyl)acetal and methoxysilane substrates nucleophilically attacking the eta(1)-silane iridium complex to give the ion pairs [(POCOP)IrH2] [HC(OSiMe3)(2)](+), [(POCOP)IrH2] [CH2(OSiMe3)(2) (SiMe3)](+) , and [(POCOP)IrH2] [CH3 O(SiMe3)(2)](+), respectively, followed by the hydride transfer process. The rate-Limiting steps of the three reducing stages are calculated to possess free energy barriers of 12.2, 16.4 and 22.9 kcal mol(-1) , respectively. Furthermore, our study indicates that the natural iridium dihydride [(POCOP)IrH2] generated along the ionic S-N(2) outer-sphere pathway could greatly facilitate the silylation of CO2 , with a potential energy barrier calculated at a Low value of 16.7 kcal mol(-1)
引用
收藏
页码:9232 / 9242
页数:11
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