催化作用
Atom(片上系统)
对偶(语法数字)
Boosting(机器学习)
电子
化学
双重角色
材料科学
光化学
物理
组合化学
艺术
文学类
量子力学
机器学习
计算机科学
生物化学
嵌入式系统
作者
Xueyan Xue,Nan Xue,Hui Zhu,Xiaojun Miao,Linlin Li,Xin Cheng,Liping Yang,Jiao Yin
出处
期刊:Small
[Wiley]
日期:2025-05-27
卷期号:21 (29): e2503904-e2503904
被引量:11
标识
DOI:10.1002/smll.202503904
摘要
Abstract High‐valent Fe═O species, recognized as pivotal reactive oxygen intermediates in the catalyst‐activated peroxymonosulfate (PMS) oxidation system, play a dominant role in contaminant degradation. However, the inherent correlation between the Fe 3d electronic structure of heterogeneous catalysts and the generation efficiency of high‐valent Fe═O remains unclear, limiting the rational design of high‐performance catalysts. To the end, Fe–Mo dual‐atom catalysts (FeMoNC) with N 3 Fe‐O‐MoN 2 configurations are constructed, which exhibit exceptional sulfadiazine (SDZ) degradation activity (k = 0.92 min −1 ). This performance surpasses that of monometallic FeNC (1.67 times), attributed to the optimized generation of high‐valent Fe═O species. Combined XPS/XAS analysis and DFT calculations reveal that electron transfer from Mo to Fe upshifts the Fe d‐band center by 0.144 eV, which facilitates O γ ‐O β bond cleavage in PMS (energy barrier reduced by 31%) and stabilizes high‐valent Fe═O species. The electronic modifications further confirm the promoted high‐valent Fe═O formation. This work elucidates the electronic origin of high‐valent Fe═O generation in heteronuclear dual‐atom catalysts, providing a universal strategy for manipulating 3d‐electron configurations to enhance high‐valent metal‐oxo chemistry in advanced oxidation processes.
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