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A DFT study of methane activation on graphite surfaces with vacancy defects 被引量:3

A DFT study of methane activation on graphite surfaces with vacancy defects
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摘要 The activation of methane on graphite surfaces with monovacancies and 5-8-5 vacancies have been investigated using density functional theory. Sixteen different initial adsorption configurations were investigated to identify the most favorable activation site. It is found that methane tends to be activated on the defective graphite surfaces, and the most stable configuration is that methane activation happened in the center hole of the monovacancy site, with a reaction energy of 1.13 eV. Electron transfer and weaker electrostatic potential of the vacancy region indicate that carbon atom of methane tends to fill the vacancy and makes the system more stable. The activation of methane on graphite surfaces with monovacancies and 5-8-5 vacancies have been investigated using density functional theory. Sixteen different initial adsorption configurations were investigated to identify the most favorable activation site. It is found that methane tends to be activated on the defective graphite surfaces, and the most stable configuration is that methane activation happened in the center hole of the monovacancy site, with a reaction energy of 1.13 eV. Electron transfer and weaker electrostatic potential of the vacancy region indicate that carbon atom of methane tends to fill the vacancy and makes the system more stable.
出处 《Journal of Natural Gas Chemistry》 EI CAS CSCD 2012年第6期708-712,共5页 天然气化学杂志(英文版)
基金 supported by the National Basic Research Program of China(973Program)(2011CB201202)
关键词 density functional calculations defective graphite methane activation density functional calculations defective graphite methane activation
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