雕刻
氢氧化物
催化作用
镍
层状双氢氧化物
材料科学
电化学
试剂
氧化物
析氧
电极
无机化学
金属
氧气
电催化剂
金属氢氧化物
氢
冶金
复合材料
化学
有机化学
物理化学
作者
Daojin Zhou,Xuya Xiong,Zhao Cai,Nana Han,Yin Jia,Qixian Xie,Xinxuan Duan,Tianhui Xie,Xiaolin Zheng,Xiaoming Sun,Xue Duan
标识
DOI:10.1002/smtd.201800083
摘要
Abstract Introducing oxygen vacancies to metal oxide materials would improve their catalytic activity but usually needs reductive reagents (e.g., H 2 ) and high temperatures (e.g., >600 °C), which is unsafe, complex, and time consuming. Herein, a fast (30 s) and facile (operated at ambient conditions) flame‐engraved method is used to introduce abundant oxygen vacancies and well‐defined hexagonal cavities with (110) edges to nickel–iron layered double hydroxides (NiFe‐LDH). Abundant oxygen vacancies, lower coordination numbers, and electron‐rich structures of Ni and Fe sites emerge in the flame‐engraved NiFe‐LDH array electrode, leading to its onset potential as low as 1.40 V (vs reversible hydrogen electrode) for oxygen evolution reaction. This highlights the importance and convenience of flame‐engraving method in preparing metal hydroxides with abundant oxygen vacancies, which can be used as efficient electrochemical catalysts.
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