催化作用
吸附
动力学
工作(物理)
化学
化学工程
热力学
材料科学
缩放比例
还原(数学)
线性比例尺
动能
电催化剂
过渡金属
领域(数学)
多相催化
标度律
极限(数学)
无机化学
纳米技术
化学动力学
一氧化碳
配体(生物化学)
物理化学
作者
W L Liu,Haoquan Wang,Shiyong Xu,Shilin Wei,Peiyao Bai,Chang Zhu,Lang Xu
标识
DOI:10.1002/anie.202521626
摘要
ABSTRACT Single‐atomic catalysts face the following major challenges in the rapidly advancing field of electrocatalytic CO 2 reduction (ECR) to CO: linear scaling relationships between adsorption strengths of intermediates lead to unfavored ECR thermodynamics; low CO 2 /proton/electron concentrations within microenvironments on catalyst surfaces limit ECR kinetics. Consequently, we synthesized a Cu–La dual‐atomic catalyst (DAC) for synergistically optimizing the ECR thermodynamics and kinetics. The Cu and La sites of Cu–La DAC can respectively couple the C and O atoms of *COOH, forming a novel dual‐site *COOH adsorption configuration, which does not undergo a transition to subsequent *CO. Cu–La DAC can effectively break the linear scaling relationship and optimize the ECR thermodynamics. Furthermore, Cu and La, possessing distinct conductivity, hydrophilicity, and CO 2 adsorption capabilities, collectively modulate the microenvironments on the surface of Cu–La DAC. This facilitates the efficient supply of electrons, protons, and CO 2 for ECR, thereby greatly enhancing the kinetics. This work combines Cu and La, which have different macroscopic properties and electronic structures (microscopic), to synergistically optimize thermodynamics and kinetics based on the dual‐site adsorption of DAC, providing new insights for designing high‐performance catalysts and discovering efficient mechanisms.
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