双金属片
覆盖层
催化作用
选择性
材料科学
纳米颗粒
化学工程
金属
格子(音乐)
外延
合理设计
纳米技术
多相催化
纳米结构
六方晶系
化学物理
过渡金属
科技与社会
光化学
纳米晶
无机化学
作者
Hongsheng Wang,Yue Zeng,Shuai Lyu,Ping Xiao,Mohammad Hassan Hadizadeh,Shan Wang,Junjiang Zhu
标识
DOI:10.1021/acssuschemeng.6c06497
摘要
Abstract Cu−Co bimetallic catalysts have demonstrated considerable potential for CO2 hydrogenation to C2+ alcohols. However, their practical application remains constrained by excessive CH4 formation arising from the uncontrolled reduction of Co species under reaction conditions. Herein, we report a semi-encapsulated catalyst architecture constructed through a lattice-mismatching strategy. The lattice mismatch between hexagonal CoO (h-CoO) and ZnO is only 0.18%, whereas that between Cu2O and ZnO reaches 31.4%. When ZnO serves as the seed crystal, Cu2O preferentially nucleates and grows into nanoparticles on the ZnO surface, while h-CoO undergoes epitaxial growth on the exposed ZnO regions, forming a semi-encapsulated configuration in which Cu2O nanoparticles are partially confined by an h-CoO overlayer. The strong lattice matching between h-CoO and ZnO stabilizes Co species in an oxidized state under reaction conditions, thereby suppressing the formation of metallic Co and CH4 production. Meanwhile, the confinement effect imposed by the h-CoO overlayer effectively restricts Cu migration, preserving the Cu−Co interfacial sites that are critical for C−C coupling. As a result, the optimized catalyst achieves a C2+ alcohol selectivity of 63.7% at 300 °C, with an ethanol selectivity of 30.0%, and exhibits no noticeable deactivation over 200 h of continuous operation. This work demonstrates that lattice-matching-directed interfacial engineering represents an effective strategy for simultaneously regulating active-phase stability and metal dispersion, offering new insights into the rational design of catalysts for selective CO2 hydrogenation to C2+ alcohols.
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