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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Influence of solvent composition on the kinetics of cyclooctene epoxidation by hydrogen peroxide catalyzed by iron(III) [tetrakis(pentafluorophenyl)] porphyrin chloride [(F20TPP)FeCl]
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Influence of solvent composition on the kinetics of cyclooctene epoxidation by hydrogen peroxide catalyzed by iron(III) [tetrakis(pentafluorophenyl)] porphyrin chloride [(F20TPP)FeCl]

机译:溶剂组成对铁(III)[四(五氟苯基)]卟啉氯化物[[F20TPP)FeCl]催化的过氧化氢环辛烯环氧化动力学的影响

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The epoxidation of cyclooctene catalyzed by iron(III) [tetrakis(pentafluorophenyl)] porphyrin chloride [(F20TPP)FeCl] was investigated in alcohol/acetonitrile solutions in order to determine the effects of the alcohol composition on the reaction kinetics. It was observed that alcohol composition affects both the observed rate of hydrogen peroxide consumption (the limiting reagent) and the selectivity of hydrogen peroxide utilization to form cyclooctene epoxide. The catalytically active species are formed only in alcohol-containing solvents as a consequence of (F20TPP)FeCl dissociation into [(F20TPP)Fe(ROH)](+) cations and Cl- anions. The observed reaction kinetics are analyzed in terms of a proposed mechanism for the epoxidation of the olefin and the decomposition of H2O2. The first step in this scheme is the reversible coordination of H2O2 to [(F20TPP)Fe(ROH)]+. The O-O bond of the coordinated H2O2 then undergoes either homolytic or heterolytic cleavage. The rate of homolytic cleavage is found to be independent of alcohol composition, whereas the rate of heterolytic cleavage increases with alcohol acidity, Heterolytic cleavage is envisioned to form iron(IV) pi-radical cations, whereas homolytic cleavage forms iron(IV) hydroxo cations. The iron(IV) radical cations are active for olefin epoxidation, whereas the iron(IV) cations catalyze the decomposition of H2O2. Reaction of iron(IV) pi-radical cations with H2O2 to form iron(IV) hydroxo cations is also included in the mechanism, a process that is favored by alcohols with a high charge density on the 0 atoms. The proposed mechanism describes successfully the effects of H2O2, cyclooctene, and porphyrin concentrations, as well as the effects of alcohol concentration.
机译:在乙醇/乙腈溶液中研究了铁(III)[四(五氟苯基)]卟啉氯化物[(F20TPP)FeCl]催化的环辛烯的环氧化,以确定醇组成对反应动力学的影响。观察到醇组成影响所观察到的过氧化氢消耗速率(限制剂)和过氧化氢利用形成环辛烯环氧化物的选择性。由于(F20TPP)FeCl分解为[(F20TPP)Fe(ROH)](+)阳离子和Cl-阴离子,仅在含醇的溶剂中形成催化活性物质。根据提出的烯烃环氧化和H2O2分解的机理分析了观察到的反应动力学。该方案的第一步是H2O2与[(F20TPP)Fe(ROH)] +的可逆配位。然后,配位的H 2 O 2的O-O键经历均相或异源裂解。发现均相裂解的速率与醇的组成无关,而杂合裂解的速率随醇的酸度而增加,设想异源裂解形成铁(IV)自由基,而均质裂解形成铁(IV)羟基阳离子。 。铁(IV)自由基阳离子对烯烃环氧化具有活性,而铁(IV)阳离子则催化过氧化氢的分解。机理中还包括铁(IV)自由基阳离子与H2O2的反应以形成铁(IV)羟基阳离子,这一过程受到0原子上电荷密度高的醇的支持。拟议的机制成功地描述了H2O2,环辛烯和卟啉浓度的影响,以及酒精浓度的影响。

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