纳米材料基催化剂
双功能
甲醇
催化作用
无机化学
铜
吸附
选择性
化学
协同催化
氢溢流
金属
材料科学
氢
化学工程
双功能催化剂
工业催化剂
氨生产
密度泛函理论
多相催化
氨
钯
共沉淀
沸石
降水
纳米颗粒
碳纤维
作者
Jucang Ke,Xiuyun Jiang,Qingxiang Ma,Hao Song,Baojian Chen,Chufeng Liu,Xinhua Gao,Hanyao Song,Haozhe Feng,Jianli Zhang,Guangbo Liu,Tiansheng Zhao,Noritatsu Tsubaki
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2025-10-17
卷期号:15 (21): 18046-18062
被引量:10
标识
DOI:10.1021/acscatal.5c03961
摘要
Copper-based catalysts remain among the most extensively studied systems for the hydrogenation of CO2 to methanol owing to their high catalytic performance. However, advancements in the development of copper-based catalysts rely heavily on the incorporation of metal additives and the utilization of catalyst supports. In this study, an unsupported, nonmetallic N-doped Cu nanocatalyst was prepared by an ammonia complexation precipitation method, which has favorable catalytic performance in the hydrogenation of CO2 to methanol. The conversion of CO2 and selectivity of methanol reach up to 6.9 and 71.7% (240 °C, 3.0 MPa), respectively. Based on combined structural and electronic property analyses with density functional theory calculations, N species doped at copper interstitial sites exhibit enhanced CO2 adsorption capacity through interactions with copper and induce the in situ formation of additional Cu+ species from Cu0 under a CO2 atmosphere, thereby constructing bifunctional Cu0/N-Cu+ catalytic sites. Within these sites, Cu0 sites promote hydrogen dissociation, while Cu+ sites interacting with nitrogen synergistically facilitate the CO2 adsorption and activation. This enables the stepwise hydrogenation of the CO2-derived intermediates into methanol.
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