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噻吩在层状FeS(001)、(011)和(111)表面的吸附与脱硫机理:色散校正密度泛函理论研究

Adsorption and Desulfurization Mechanism of Thiophene on Layered FeS(001), (011), and (111) Surfaces: A Dispersion-Corrected Density Functional Theory Study.

作者信息

Dzade Nelson Y, de Leeuw Nora H

机构信息

Department of Earth Sciences, Utrecht University, Princetonplein 9, 3584 CC Utrecht, The Netherlands.

School of Chemistry, Cardiff University, Main Building, Park Place, CF10 3AT Cardiff, United Kingdom.

出版信息

J Phys Chem C Nanomater Interfaces. 2018 Jan 11;122(1):359-370. doi: 10.1021/acs.jpcc.7b08711. Epub 2017 Nov 28.

Abstract

Layered transition-metal chalcogenides have emerged as a fascinating new class of materials for catalysis. Here, we present periodic density functional theory (DFT) calculations of the adsorption of thiophene and the direct desulfurization reaction pathways on the (001), (011), and (111) surfaces of layered FeS. The fundamental aspects of the thiophene adsorption, including the initial adsorption geometries, adsorption energies, structural parameters, and electronic properties, are presented. From the calculated adsorption energies, we show that the flat adsorption geometries, wherein the thiophene molecule forms multiple π-bonds with the FeS surfaces, are energetically more favorable than the upright adsorption geometries, with the strength of adsorption decreasing in the order FeS(111) > FeS(011) > FeS(001). The adsorption of the thiophene onto the reactive (011) and (111) surfaces is shown to be characterized by charge transfer from the interacting Fe d-band to the π-system of the thiophene molecule, which causes changes of the intramolecular structure including loss of aromaticity and elongation of the C-S bonds. The thermodynamic and kinetic analysis of the elementary steps involved in the direct desulfurization of thiophene on the reactive FeS surfaces is also presented. Direct desulfurization of thiophene occurs preferentially on the (111) surface, as reflected by the overall exothermic reaction energy calculated for the process ( = -0.15 eV), with an activation energy of 1.58 eV.

摘要

层状过渡金属硫族化合物已成为一类引人入胜的新型催化材料。在此,我们展示了对噻吩在层状FeS的(001)、(011)和(111)表面上的吸附以及直接脱硫反应路径的周期性密度泛函理论(DFT)计算。文中给出了噻吩吸附的基本方面,包括初始吸附几何结构、吸附能、结构参数和电子性质。从计算出的吸附能来看,我们发现平面吸附几何结构(即噻吩分子与FeS表面形成多个π键)在能量上比直立吸附几何结构更有利,吸附强度按FeS(111) > FeS(011) > FeS(001)的顺序降低。噻吩在活性(011)和(111)表面上的吸附表现为电荷从相互作用的Fe d带转移到噻吩分子的π体系,这导致分子内结构发生变化,包括芳香性丧失和C-S键伸长。文中还给出了噻吩在活性FeS表面上直接脱硫所涉及的基本步骤的热力学和动力学分析。噻吩的直接脱硫优先发生在(111)表面,这由该过程计算出的总放热反应能量( = -0.15 eV)以及1.58 eV的活化能反映出来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/13cd/5767879/8bb53ff16dff/jp-2017-08711m_0001.jpg

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