材料科学
晶界
贵金属
离解(化学)
微晶
纳米颗粒
催化作用
反应性(心理学)
密度泛函理论
氢
金属
制氢
纳米技术
化学工程
物理化学
计算化学
复合材料
化学
微观结构
医学
替代医学
有机化学
病理
工程类
冶金
生物化学
作者
Xin Geng,Shuwei Li,Jaeyoung Heo,Yi Peng,Wenhui Hu,Yanchao Liu,Jier Huang,Yang Ren,Dong‐Sheng Li,Liang Zhang,Long Luo
标识
DOI:10.1002/adfm.202204169
摘要
Abstract Here, a comprehensive study on the synthesis, characterization, and reactivity of grain‐boundary (GB)‐rich noble metal nanoparticle (NP) assemblies is presented. A facile and scalable synthesis of Pt, Pd, Au, Ag, and Rh NP assemblies is developed, in which NPs are predominantly connected via Σ3 (111) twin GBs, forming a network. Driven by water electrolysis, the random collisions and oriented attachment of colloidal NPs in solution lead to the formation of Σ3 (111) twin boundaries and some highly mismatched GBs. This synthetic method also provides convenient control over the GB density without altering the crystallite size or GB type by varying the NP collision frequency. The structural characterization reveals the presence of localized tensile strain at the GB sites. The ultrahigh activity of GB‐rich Pt NP assembly toward catalytic hydrogen oxidation in air is demonstrated, enabling room‐temperature catalytic hydrogen sensing for the first time. Finally, density functional theory calculations reveal that the strained Σ3(111) twin boundary facilitates oxygen dissociation, drastically enhancing the hydrogen oxidation rate via the dissociative pathway. This reported large‐scale synthesis of the Σ3 (111) twin GB‐rich structures enables the development of a broad range of high‐performance GB‐rich catalysts.
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