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密度泛函理论研究钛硅分子筛-1催化剂上环己酮羟胺氨化反应的羟胺机理。

Density functional theory studies on hydroxylamine mechanism of cyclohexanone ammoximation on titanium silicalite-1 catalyst.

机构信息

Department of Chemical Engineering, School of Chemical Engineering and Technology, Tianjin University, Nankai District, Wei Jin Road 92, Tianjin 300072, China.

出版信息

J Mol Model. 2013 Jun;19(6):2217-24. doi: 10.1007/s00894-013-1768-1. Epub 2013 Jan 31.

Abstract

The hydroxylamine mechanism of cyclohexanone ammoximation on defective titanium active site of titanium silicalite-1 (TS-1) was simulated using two-layer ONIOM (M062X/6-31G**:PM6) method. A new energy favorable reaction route was found, which contained two parts: (1) the catalytic oxidation of adsorbed NH3 to form hydroxylamine using the Ti-OOH as an active oxidant formed by reacting H2O2 with the defective Ti active site; (2) the subsequent noncatalytic oximation of desorbed hydroxylamine and cyclohexanone out of TS-1 pores to form cyclohexanone oxime. In the catalytic formation of hydroxylamine on the Ti active site of TS-1, the proposed mechanism of two-step single-proton transfer aided by a lattice oxygen atom bonded to Ti atom need a lower reaction energy than the mechanism proposed before. In the subsequent noncatalytic oximation of hydroxylamine and cyclohexanone, which contained two elementary reaction steps in total, the mechanisms of one-step double-proton transfer in the first elementary reaction step and the subsequent one-step three-proton transfer for the second elementary reaction step were proposed, in which the solvent water molecules played a very important role in assisting and stabilizing the proton transfer processes.

摘要

采用两层 ONIOM(M062X/6-31G**:PM6)方法模拟了钛硅分子筛-1(TS-1)缺陷钛活性位上环己酮氨肟化的羟胺反应机理。发现了一条新的能量有利的反应途径,它包含两部分:(1)Ti-OOH 与缺陷 Ti 活性位反应生成的 H2O2 作为活性氧化剂,将吸附的 NH3 催化氧化形成羟胺;(2)吸附的羟胺和环己酮从 TS-1 孔中脱附,随后非催化肟化生成环己酮肟。在 TS-1 上 Ti 活性位催化生成羟胺的过程中,所提出的两步单质子转移辅助晶格氧原子与 Ti 原子结合的机理需要的反应能比以前提出的机理低。在羟胺和环己酮的后续非催化肟化过程中,总共包含两个基元反应步骤,提出了第一个基元反应步骤中单步双质子转移和第二个基元反应步骤中随后的单步三质子转移的机理,其中溶剂水分子在辅助和稳定质子转移过程中起着非常重要的作用。

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