原子轨道
化学
人口
结晶学
电子
化学物理
电子转移
双层
电子结构
催化作用
自旋态
光化学
过渡金属
自旋(空气动力学)
基态
对称性破坏
中间状态
材料科学
对称(几何)
氧化还原
原子物理学
脂质双层
物理
未成对电子
立体化学
分子物理学
计算化学
局部对称性
共价键
活动站点
作者
Juanjuan Wei,Xue Yang,Wenfeng Kang,Wenxia Ma,Chang Ma,Xingchen Jiang,Mengyao Niu,Jiangping Cao,Jimei Zhou,Yixuan Gao,Yun Yan,Zhan’ao Tan
摘要
ABSTRACT Precise spin‐polarization modulation of electronic structures in dual single‐atomic sites (DSAS) is critical yet challenging for boosting electrocatalytic CO 2 reduction reaction (CO 2 RR). Here, we report a Fe 3 d ‐orbital spin‐polarization regulation strategy through constructing an axial N‐bridge bond and adjacent Cu–N 4 on hollow bilayer Fe–Cu dual single‐atom catalysts (HFeCu–N–C DSACs). Experimental and theoretical evidence demonstrate that the axial N‐bridge bond disrupts the D 4h symmetry of the Fe–N 4 active center, resulting in the rearrangement of Fe 3 d electrons and thereby breaking the surface d –π conjugate structure (Fe–N–C). Meanwhile, the Jahn‐Teller effect of the adjacent Cu–N 4 sites is inferred to potentially regulate the spin state of Fe sites, which facilitates the transition from low‐spin ( ↓↑ , ↓↑ , ↑ , _, _) to high‐spin ( ↑ , ↑ , ↑ , ↑ , ↑ ). Therefore, the increased population of unpaired electrons on d xz , and d yz orbitals is pivotal for stabilizing the π * orbitals of CO 2 and activating CO 2 , thus enhancing the intrinsic reaction activity of HFeCu–N–C DSACs. The as‐made HFeCu–N–C DSACs present a superior faraday efficiency (FE) of a highly selective CO product, 99.32% @ −0.5 V (vs. RHE), and long‐term durability. This work provides a new strategy for tuning the electronic spin state of DSACs to boost CO 2 RR electrocatalytic performance.
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