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In situ phosphating of Zn-doped bimetallic skeletons as a versatile electrocatalyst for water splitting

  • Licheng Huang
  • , Ruiqi Yao
  • , Xueqing Wang
  • , Shuo Sun
  • , Xingxing Zhu
  • , Xinghui Liu
  • , Min Gyu Kim
  • , Jianshe Lian
  • , Fuzhu Liu
  • , Yingqi Li
  • , Hongxiang Zong
  • , Shuang Han
  • , Xiangdong Ding
  • Jilin University
  • Northeast Normal University
  • Medical Oncology
  • Sungkyunkwan University
  • Pohang University of Science and Technology
  • Xi'an Jiaotong University

科研成果: 期刊稿件文章同行评审

119 引用 (Scopus)

摘要

Highly efficient electrocatalysts for water splitting generally involve noble metals (Pt, Ir, Ru, etc.) or expensive transition metals (Ni, Co, Cu, etc.), which have hindered their widespread application. Here, we report a brand-new, low-cost phosphated Zn-doped bimetallic (Fe/Mn) skeleton (Zn-Fe/Mn@Mn-FeP, FMZP4) with genuine potential as a highly effective water-splitting electrocatalyst. Benefiting from heterogeneous atom doping as well as a self-supported electrode composed of a porous Zn-Fe/Mn skeleton and in situ grown phosphides (Mn-FeP) with a hierarchical ultrathin nanosheet structure, which provide rapid electron transport and efficient mass transport channels, the optimized FMZP4 exhibits low overpotentials of 53 mV and 184 mV to reach current densities of 10 mA cm−210) and 20 mA cm−220) for hydrogen and oxygen evolution reactions, respectively, revealing good stability in a long potential cycling test (1000 cycles) and remaining completely stable over an 80 h galvanostatic measurement at 10/50 mA cm−2. More impressively, it needs just 1.79 V to achieve η50 for full water splitting in an alkaline electrolyte and exhibits superior electrochemical durability. The excellent electrocatalytic activity makes it a candidate material for a low-cost electrocatalyst with broad applicability in water splitting.

源语言英语
页(从-至)2425-2434
页数10
期刊Energy and Environmental Science
15
6
DOI
出版状态已出版 - 13 4月 2022

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