机制(生物学)
活性炭
炭黑
分解
碳纤维
材料科学
化学工程
化学
物理化学
复合材料
吸附
工程类
有机化学
物理
复合数
量子力学
天然橡胶
作者
Duo Xu,Wenzhe Zhang,Zhiwei Chu,Qi Zong,Fang Liu,Li Yang,Yuanzhuo Jing,Yingjie Li
标识
DOI:10.1002/adsu.202500433
摘要
Abstract Carbon black‐loaded activated carbon (CB‐loaded AC) is a cost‐effective catalyst for CH 4 decomposition to produce H 2 . CB induces defects on the AC surface, enhancing catalytic activity. Current studies on the role of defects in promoting CH 4 decomposition are primarily experimental, with unclear mechanisms. Hence, exploring the reaction mechanism of defects in CH 4 decomposition is crucial. In this work, the Grand Canonical Monte Carlo (GCMC) and Density Functional Theory (DFT) are used to construct defects (Mono‐Vacancy defect, Di‐Vacancy defect, and Stone‐Wales defect) on the AC surface, determining the catalytic mechanism of defects in CH 4 decomposition. The results show that during the CH 4 decomposition (C─H bond cleavage) phase, defective AC reduces the energy barriers for CH 4 decomposition. Under identical conditions, the rate‐determining step of C─H bond cleavage in CH 4 occurs more readily on AC with Mono‐Vacancy, Di‐Vacancy, and Stone‐Wales defects, with corresponding reductions in energy barriers of 4.64, 2.36, and 3.12%, respectively. The total energy barriers for the reaction are reduced by 12.95, 27.58, and 8.43%, respectively. This indicates that the defects significantly lower the energy barrier for CH 4 decomposition, thereby facilitating the reaction and confirming that these defects act as active sites for the catalytic decomposition of CH 4 on AC.
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