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氟修饰石墨烯上桥连-溢流机制的密度泛函理论(DFT)与动力学蒙特卡罗联合研究

Combined DFT and kinetic Monte Carlo study of a bridging-spillover mechanism on fluorine-decorated graphene.

作者信息

Guo Jing-Hua, Liu Jin-Xiang, Wang Hong-Bo, Liu Hai-Ying, Chen Gang

机构信息

Laboratory of Advanced Materials Physics and Nanodevices, School of Physics and Technology, University of Jinan, Jinan, Shandong 250022, China.

出版信息

Phys Chem Chem Phys. 2021 Jan 28;23(3):2384-2391. doi: 10.1039/d0cp05584k.

Abstract

In this work, combining first-principles calculations with kinetic Monte Carlo (KMC) simulations, we constructed an irregular carbon bridge on the graphene surface and explored the process of H migration from the Pt catalyst to carbon bridge, and further migration to the graphene surface. The calculated reaction diagrams show that the hydrogen atoms can easily migrate from the Pt cluster to the carbon bridge with a low barrier of 0.22-0.86 eV, and KMC simulations indicate that the migration reactions can take place at intermediate temperatures (91.9-329.5 K). Our research clarified the role of the carbon bridge: (1) the close combination of Pt clusters and carbon bridges reduces H2 adsorption enthalpy, which facilitates the spillover of H atoms from the Pt cluster to the carbon bridges and (2) the unsaturated carbon atoms on the carbon bridges have radical character and tend to bind radical H atoms. The subsequent study shows that the F atoms decorated on graphene can greatly reduce the migration barrier of H atoms from the carbon bridge to graphene. With F atoms decorated, the carbon atoms are in an electron-deficient state, which have a strong ability to bind the hydrogen atoms, and it promotes the migration of H atoms to the graphene surface. The migration barrier and reaction temperature are reduced to 0.72 eV and 279 K, respectively.

摘要

在这项工作中,我们将第一性原理计算与动力学蒙特卡罗(KMC)模拟相结合,在石墨烯表面构建了一个不规则碳桥,并探究了氢从铂催化剂迁移至碳桥,进而迁移到石墨烯表面的过程。计算得到的反应图表明,氢原子能够以0.22 - 0.86 eV的低势垒轻松地从铂簇迁移至碳桥,而KMC模拟表明迁移反应可在中等温度(91.9 - 329.5 K)下发生。我们的研究阐明了碳桥的作用:(1)铂簇与碳桥的紧密结合降低了H₂的吸附焓,这有利于氢原子从铂簇溢出至碳桥;(2)碳桥上的不饱和碳原子具有自由基特性,易于结合自由基氢原子。后续研究表明,修饰在石墨烯上的氟原子能够大幅降低氢原子从碳桥迁移至石墨烯的势垒。有氟原子修饰时,碳原子处于缺电子状态,具有很强的结合氢原子的能力,这促进了氢原子向石墨烯表面的迁移。迁移势垒和反应温度分别降至0.72 eV和279 K。

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