格式化
过电位
吸附
电合成
法拉第效率
催化作用
电化学
化学工程
化学
反应中间体
材料科学
介电谱
密度泛函理论
动能
二甲胺
原位
无机化学
电解水
二氧化碳电化学还原
工作(物理)
电催化剂
氨生产
过渡金属
甲酰胺
作者
Kangyu Lou,Libin Zeng,Qingshuang Xu,Nengji Liu,Lin Wang,Xianyun Peng,Lecheng Lei,Zhifu Qi,Evgeniya Sheremet,Raul D. Rodriguez,Junkuo Gao,Yang Hou
摘要
ABSTRACT Electrochemical CO 2 reduction (eCO 2 RR) is increasingly capable of delivering downstream‐compatible carbon products, yet the interfacial origin of pathway selection remains insufficiently understood. Here, coordination‐environment‐tunable Cu–Sn catalysts are employed to partition CO 2 electrosynthesis between a Sn‐centered formate‐selective pathway and a Cu‐centered CO‐selective pathway. In situ spectroscopy reveals coordination‐dependent evolution of adsorbed intermediate and interfacial water structures, while H/D kinetic isotope analysis and in situ electrochemical impedance spectroscopy‐distribution of relaxation times (EIS‐DRT) measurements resolve distinct proton‐coupled and polarization‐sensitive kinetic regimes. Density functional theory calculations further elucidate the energetic origin of pathway bifurcation through coordination‐dependent reconstruction of adsorption geometry and interfacial energetics. Sn‐centered medium‐coordination regimes favor oxygen‐bound intermediates and a proton‐coupled formate pathway, whereas Cu‐centered medium‐coordination regimes promote carbon‐bound adsorption and CO‐selective reactivity. In the downstream modules, electrodialysis achieves a 98.1% HCOOK‐to‐HCOOH conversion with 93.97% Faradaic efficiency (FE) at 300 mA cm −2 , while CO 2 ‐NH 3 route delivers formamide with a maximum FE of 45.2% and a production rate of 840 µmol cm −2 h −1 . This work establishes coordination‐engineered interfacial partitioning as a strategy for integrated CO 2 electrosynthesis with downstream upgrading.
科研通智能强力驱动
Strongly Powered by AbleSci AI