材料科学
基面
范德瓦尔斯力
化学物理
纳米技术
氢
结晶学
工程物理
分子
化学
物理
有机化学
作者
Wen Zhao,Congcong Cui,Y. Xu,Qiyuan Liu,Yang Zhang,Zihan Zhang,Shenci Lu,Zi‐Qiang Rong,Xinzhe Li,Yiyun Fang,Wei Huang
标识
DOI:10.1002/adma.202301593
摘要
Abstract Exposing active sites and optimizing their binding strength to reaction intermediates are two essential strategies to significantly improve the catalytic performance of 2D materials. However, pursuing an efficient way to achieve these goals simultaneously remains a considerable challenge. Here, using 2D PtTe 2 van der Waals material with a well‐defined crystal structure and atomically thin thickness as a model catalyst, it is observed that a moderate calcination strategy can promote the structural transformation of 2D crystal PtTe 2 nanosheets (c‐PtTe 2 NSs) into oxygen‐doped 2D amorphous PtTe 2 NSs (a‐PtTe 2 NSs). The experimental and theoretical investigations cooperatively reveal that oxygen dopants can break the inherent Pt‐Te covalent bond in c‐PtTe 2 NSs, thereby triggering the reconfiguration of interlayer Pt atoms and exposing them thoroughly. Meanwhile, the structural transformation can effectively tailor the electronic properties (e.g., the density of state near the Fermi level, d ‐band center, and conductivity) of Pt active sites via the hybridization of Pt 5 d orbitals and O 2 p orbitals. As a result, a‐PtTe 2 NSs with large amounts of exposed Pt active sites and optimized binding strength to hydrogen intermediates exhibit excellent activity and stability in hydrogen evolution reaction.
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