材料科学
硒化物
超晶格
氧化物
金属
选择性
格式化
无机化学
纳米技术
催化作用
化学
光电子学
有机化学
冶金
硒
作者
Ji’an Duan,Tianyang Liu,Yinghe Zhao,Ruoou Yang,Yang Zhao,Wenbin Wang,Youwen Liu,Huiqiao Li,Yafei Li,Tianyou Zhai
标识
DOI:10.1038/s41467-022-29699-2
摘要
Metal oxides are archetypal CO2 reduction reaction electrocatalysts, yet inevitable self-reduction will enhance competitive hydrogen evolution and lower the CO2 electroreduction selectivity. Herein, we propose a tangible superlattice model of alternating metal oxides and selenide sublayers in which electrons are rapidly exported through the conductive metal selenide layer to protect the active oxide layer from self-reduction. Taking BiCuSeO superlattices as a proof-of-concept, a comprehensive characterization reveals that the active [Bi2O2]2+ sublayers retain oxidation states rather than their self-reduced Bi metal during CO2 electroreduction because of the rapid electron transfer through the conductive [Cu2Se2]2- sublayer. Theoretical calculations uncover the high activity over [Bi2O2]2+ sublayers due to the overlaps between the Bi p orbitals and O p orbitals in the OCHO* intermediate, thus achieving over 90% formate selectivity in a wide potential range from -0.4 to -1.1 V. This work broadens the studying and improving of the CO2 electroreduction properties of metal oxide systems.
科研通智能强力驱动
Strongly Powered by AbleSci AI