催化作用
浸出(土壤学)
硅氢加成
材料科学
空位缺陷
氢氧化物
金属
Atom(片上系统)
马尔科夫尼科夫法则
化学物理
氧气
氧原子
光化学
化学工程
纳米技术
结晶学
无机化学
冶金
分子
化学
有机化学
嵌入式系统
土壤科学
工程类
土壤水分
区域选择性
计算机科学
环境科学
作者
Tianyu Zhang,Yang Xiang,Jing Jin,Han Xu,Yingyan Fang,Xulin Zhou,Yaping Li,Aijuan Han,Yu Wang,Junfeng Liu
标识
DOI:10.1002/adma.202304144
摘要
Abstract Modulating the electronic metal‐support interaction (EMSI) of the single‐atomic sites against leaching via microenvironment regulation is critical to achieving high activity and stability but remains challenging. Herein, this work selectively confines Pt single atoms on CoFe layered double hydroxide (LDH) by three oxygen atoms around cation vacancy (Pt 1 /LDH V ) or one oxygen atom at the regular surface (Pt 1 /LDH) via cation vacancy engineering. By characterizing the structural evolution of the obtained catalysts before and after vacancy construction and single‐atom anchoring, this work demonstrates how the microenvironments modulate the EMSI and the catalytic performance. Theoretical simulations further reveal a significantly enhanced EMSI effect by the three‐coordinated Pt 1 atoms on cation vacancies in Pt 1 /LDH V , which endows a more prominent anti‐leaching feature than the one‐coordinated ones on the regular surface. As a result, the Pt 1 /LDH V catalyst shows exceptional performance in anti‐Markovnikov alkene hydrosilylation, with a turnover frequency of 1.3 × 10 5 h −1 . More importantly, the enhanced EMSI of Pt 1 /LDH V effectively prevented the leaching of Pt atom from the catalyst surface and can be recycled at least ten times with only a 3.4% loss of catalytic efficiency with minimal Pt leaching, and reach a high turnover number of 1.0 × 10 6 .
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