锰
催化作用
空位缺陷
氧气
过渡金属
材料科学
电催化剂
水溶液
氧还原反应
磷化物
纳米技术
还原(数学)
析氧
电流密度
碳纤维
无机化学
还原剂
化学工程
氧还原
功率密度
耐久性
电极
工作(物理)
异质结
密度泛函理论
电池(电)
作者
Zuyang Luo,Xueguang Shao,Jinshan Cheng,Jiayin Xie,Baofa Liu,Fengli Wei,Tayirjan Taylor Isimjan,Jingya Guo,Xiulin Yang
标识
DOI:10.1021/acssuschemeng.5c06704
摘要
Exploiting the efficiency and durability of oxygen reduction reaction (ORR) electrocatalysts for Zn-air batteries (ZABs) remains a tremendous challenge. In this work, a novel sacrificial agent strategy was employed to construct vacancy-rich MnP/Mn 5.64 P 3 heterostructure nanobicrystals on nitrogen-doped carbon (Mn x P y /NC). Multiple ex / in situ characterizations reveal that the Cd sacrificial agent induces structural reconstruction and vacancy generation, which accelerates electron transfer, optimizes the transformation of intermediates, and suppresses the production of byproducts. As a result, the optimized Mn x P y /NC catalyst shows remarkable ORR activity, with an onset potential of 0.93 V and a limited current density of 5.6 mA cm –2 . Notably, Mn x P y /NC-based aqueous ZABs exhibit an impressive power density (135.9 mW cm –2 ) and an ultralong cycle life (600 h), and the corresponding flexible device demonstrates excellent mechanical stability. This work presents a strategy for designing highly active transition metal phosphide-based catalysts using the sacrificial agent toward the ORR.
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