氨生产
材料科学
催化作用
氨
亚稳态
钙钛矿(结构)
氢
氧化物
氢化物
钌
离子
无机化学
化学工程
物理化学
化学
有机化学
金属
冶金
工程类
作者
Shigemi Sato,Masayoshi Miyazaki,Satoru Matsuishi,Hideo Hosono,Masaaki Kitano
标识
DOI:10.1002/aenm.202402353
摘要
Abstract Oxyhydrides have attracted attention as materials with various unique properties derived from lattice hydride ions (H − ). However, their instability makes synthesis by conventional thermal synthesis methods difficult, so an appropriate synthesis strategy is required. Here, the mechanochemical synthesis of perovskite oxyhydrides Ba RE O 2 H ( RE = Y, Sc) for catalyst applications is reported. The formation of BaYO 2 H is known to be thermodynamically unstable; however, a mechanochemical process that inevitably proceeds under non‐equilibrium conditions enables the synthesis of such a metastable oxyhydride material without any heat treatment. Furthermore, BaScO 2 H, which is typically obtained at very high temperatures (1000 °C) and pressure (>4 GPa), is successfully synthesized at room temperature by the mechanochemical method. The ammonia synthesis reaction over these oxyhydrides supporting Ru is significantly enhanced at low temperatures, and the ammonia synthesis rates are significantly higher than conventional oxide‐supported Ru catalysts. The mechanochemically synthesized Ba RE O 2 H has many anionic electrons with low work function at the site of H − vacancies, which enables strong electron donation to Ru and the storage of excess hydrogen adatoms from the Ru surface that results in high catalytic performance.
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