双功能
材料科学
催化作用
电池(电)
半导体
化学工程
双功能催化剂
金属
锌
氧气
氧化物
纳米技术
无机化学
冶金
光电子学
化学
有机化学
功率(物理)
工程类
物理
量子力学
作者
Guihua Liu,Jingde Li,Jing Fu,Gaopeng Jiang,Gregory Lui,Dan Luo,Ya‐Ping Deng,Jing Zhang,Zachary P. Cano,Aiping Yu,Dong Su,Zhengyu Bai,Lin Yang,Zhongwei Chen
标识
DOI:10.1002/adma.201806761
摘要
Abstract The highly oxidative operating conditions of rechargeable zinc–air batteries causes significant carbon‐support corrosion of bifunctional oxygen electrocatalysts. Here, a new strategy for the catalyst support design focusing on oxygen vacancy (OV)‐rich, low‐bandgap semiconductor is proposed. The OVs promote the electrical conductivity of the oxide support, and at the same time offer a strong metal–support interaction (SMSI), which enables the catalysts to have small metal size, high catalytic activity, and high stability. The strategy is demonstrated by successfully synthesizing ultrafine Co‐metal‐decorated 3D ordered macroporous titanium oxynitride (3DOM‐Co@TiO x N y ). The 3DOM‐Co@TiO x N y catalyst exhibits comparable activities for oxygen reduction and evolution reactions, but much higher cycling stability than noble metals in alkaline conditions. The zinc–air battery using this catalyst delivers an excellent stability with less than 1% energy efficiency loss over 900 charge–discharge cycles at 20 mA cm −2 . The high stability is attributed to the strong SMSI between Co and 3DOM‐TiO x N y which is verified by density functional theory calculations. This work sheds light on using OV‐rich semiconductors as a promising support to design efficient and durable nonprecious electrocatalysts.
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