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常温条件下Ag-Y沸石对叔丁硫醇吸附去除的机理研究

Mechanistic study on adsorptive removal of tert-butanethiol on Ag-Y zeolite under ambient conditions.

作者信息

Shimizu Ken-ichi, Kobayashi Nobumitsu, Satsuma Atsushi, Kojima Toshinori, Satokawa Shigeo

机构信息

Department of Applied Chemistry, Graduate School of Engineering, Nagoya University, Chikusa-ku, Nagoya 464-8603, Japan.

出版信息

J Phys Chem B. 2006 Nov 16;110(45):22570-6. doi: 10.1021/jp063590h.

Abstract

The dynamics and surface chemistry of tert-butanethiol (TBT) adsorptive removal over silver-exchanged Y zeolite (Ag-Y) were studied under ambient conditions. Saturation uptake on Ag-Y was higher than that on H-Y and Na-Y. The structural analyses by a combination of X-ray diffraction, Ag K-edge X-ray absorption near-edge structure (XANES)/extended X-ray absorption fine structures (EXAFS), Ag L(III)-edge XANES, S K-edge XANES, and in situ UV-vis show that the AgSH molecule, Ag(2)S monomer, and Ag(4)S(2) cluster are the dominant silver species in TBT-saturated Ag-Y. Dynamic changes in adsorbed intermediates, gas-phase products, and the silver sulfides were followed by in situ FTIR, mass spectroscopy and in situ UV-vis, respectively. The results show the following reaction mechanism: (1) formation of iso-butene and adsorbed H(2)S on the Ag(+) site via C-S cleavage of hydrogen-bonded TBT initially adsorbed on the Ag(+) site; (2) conversion of the adsorbed H(2)S to AgSH and H(+) on zeolite; (3) the reaction of two Ag-SH species to yield Ag(2)S and H(+) on zeolite.

摘要

在环境条件下研究了叔丁硫醇(TBT)在银交换Y型沸石(Ag-Y)上吸附去除的动力学和表面化学。Ag-Y上的饱和吸附量高于H-Y和Na-Y上的。通过X射线衍射、Ag K边X射线吸收近边结构(XANES)/扩展X射线吸收精细结构(EXAFS)、Ag L(III)边XANES、S K边XANES和原位紫外可见光谱的组合进行结构分析表明,AgSH分子、Ag(2)S单体和Ag(4)S(2)簇是TBT饱和Ag-Y中的主要银物种。分别通过原位傅里叶变换红外光谱、质谱和原位紫外可见光谱跟踪吸附中间体、气相产物和硫化银的动态变化。结果表明了以下反应机理:(1)最初吸附在Ag(+)位点上的氢键结合的TBT通过C-S裂解在Ag(+)位点上形成异丁烯和吸附的H(2)S;(2)吸附的H(2)S在沸石上转化为AgSH和H(+);(3)两个Ag-SH物种在沸石上反应生成Ag(2)S和H(+)。

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