氧化还原
化学物理
化学
基质(水族馆)
过渡金属
氢
分子动力学
纳米技术
材料科学
计算化学
催化作用
无机化学
生物化学
有机化学
海洋学
地质学
作者
Zhaoyan Luo,Yirun Guo,Changjie He,Yi Guan,Lei Zhang,Yongliang Li,Q. Zhang,Chuanxin He,Xueliang Sun,Xiangzhong Ren
标识
DOI:10.1002/ange.202405017
摘要
Abstract The controllable anchoring of multiple metal single‐atoms (SAs) into a single support exhibits scientific and technological opportunities, while marrying the concentration‐complex multimetallic SAs and high‐entropy SAs (HESAs) into one SAC system remains a substantial challenge. Here, we present a substrate‐mediated SAs formation strategy to successfully fabricate a library of multimetallic SAs and HESAs on MoS 2 and MoSe 2 supports, which can precisely control the doping location of SAs. Specially, the contents of SAs can continuously increase until the accessible Mo atoms on TMDs carriers are completely replaced by SAs, thus allowing the of much higher metal contents. In‐depth mechanistic study shows that the well‐controlled synthesis of multimetallic SAs and HESAs is realized by controlling the reversible redox reaction occurred on the TMDs/TM ion interface. As a proof‐of‐concept application, a variety of SAs‐TMDs were applied to hydrogen evolution reaction. The optimized HESAs‐TMDs (Pt,Ru,Rh,Pd,Re‐MoSe 2 ) delivers a much higher activity and durability than state of‐the‐art Pt. Thus, our work will broaden the family of single‐atom catalysts and provide a new guideline for the rational design of high‐performance single‐atom catalysts.
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