阴极
掺杂剂
材料科学
电解
化学工程
氧化还原
氧化物
储能
吸附
兴奋剂
纳米技术
无机化学
电极
化学
光电子学
有机化学
电解质
物理
工程类
物理化学
量子力学
功率(物理)
冶金
作者
Lingting Ye,Minyi Zhang,Ping Huang,Guo‐Cong Guo,Maochun Hong,Chunsen Li,John T. S. Irvine,Kui Xie
摘要
Sustainable future energy scenarios require significant efficiency improvements in both electricity generation and storage. High-temperature solid oxide cells, and in particular carbon dioxide electrolysers, afford chemical storage of available electricity that can both stabilize and extend the utilization of renewables. Here we present a double doping strategy to facilitate CO2 reduction at perovskite titanate cathode surfaces, promoting adsorption/activation by making use of redox active dopants such as Mn linked to oxygen vacancies and dopants such as Ni that afford metal nanoparticle exsolution. Combined experimental characterization and first-principle calculations reveal that the adsorbed and activated CO2 adopts an intermediate chemical state between a carbon dioxide molecule and a carbonate ion. The dual doping strategy provides optimal performance with no degradation being observed after 100 h of high-temperature operation and 10 redox cycles, suggesting a reliable cathode material for CO2 electrolysis.
科研通智能强力驱动
Strongly Powered by AbleSci AI