催化作用
化学
甲醇
煅烧
氧气
选择性
硫黄
活动站点
金属
无机化学
反应机理
兴奋剂
光化学
反应中间体
活化能
密度泛函理论
活性氧
氧原子
作者
Yongning Yuan,Tuo Guo,Jianli Zhang,Guangmin Ren,Yurong He,Qingxiang Ma,Qiang Yu,Qingjie Guo
标识
DOI:10.1016/j.nanoms.2025.11.002
摘要
The in-plane and edge sulfur vacancies (S v ) of MoS 2 serve as the active sites of CH 3 OH and CH 4 in CO 2 hydrogenation, respectively. However, edge sulfur vacancies are easily exposed, making it highly significant to inhibit their quantity and effectively promote methanol synthesis. In this study, we reported that MoS 2 /MoO 2 , obtained via calcination without metal doping or complex synthesis methods, undergoes structural rearrangement and active site regulation of MoS 2 . This modification not only significantly enhances the CO 2 conversion rate but also sharply reduces the sulfur vacancies at the edges of MoS 2 , enabling targeted control over CH 3 OH and CH 4 selectivity. Compared to pure MoS 2 , CO 2 conversion increased from 8.9 % to 13.5 %, while CH 3 OH selectivity rose dramatically from 2.5 % to 66.0 %. In-situ DRIFTS and DFT calculations demonstrate that CO 2 dissociates more readily at the edge oxygen vacancies of MoS 2 /MoO 2 , encountering a lower energy barrier, which accounts for the improved CO 2 conversion. The surface-bound CO∗ intermediates are formed and subsequently hydrogenated to species such as HCO∗. The formed CH 3 OH desorbs from the catalyst surface with lower energy, resulting in higher CH 3 OH selectivity. The catalyst exhibits excellent stability over 500 h and shows promising potential for industrial applications. This study provides theoretical insights and a novel research paradigm for designing highly active and selective Mo-based chalcogenide/oxide composites. It holds significant practical value for advancing the “double carbon” goal and facilitating energy structure transformation.
科研通智能强力驱动
Strongly Powered by AbleSci AI