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Pt-Modified High Entropy Rare Earth Oxide for Efficient Hydrogen Evolution in pH-Universal Environments

  • Yong Jiang
  • , Zhong Liang
  • , Hao Fu
  • , Mingzi Sun
  • , Siyuan Wang
  • , Bolong Huang*
  • , Yaping Du*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

The development of efficient and stable catalysts for hydrogen production from electrolytic water in a wide pH range is of great significance in alleviating the energy crisis. Herein, Pt nanoparticles (NPs) anchored on the vacancy of high entropy rare earth oxides (HEREOs) were prepared for the first time for highly efficient hydrogen production by water electrolysis. The prepared Pt-(LaCeSmYErGdYb)O showed excellent electrochemical performances, which require only 12, 57, and 77 mV to achieve a current density of 100 mA cm-2 in 0.5 M H2SO4, 1.0 M KOH, and 1.0 M PBS environments, respectively. In addition, Pt-(LaCeSmYErGdYb)O has successfully worked at 400 mA cm-2 @ 60 °C for 100 h in 0.5 M H2SO4, presenting the high mass activity of 37.7 A mg-1Pt and turnover frequency (TOF) value of 38.2 s-1 @ 12 mV, which is far superior to the recently reported hydrogen evolution reaction (HER) catalysts. Density functional theory (DFT) calculations have revealed that the interactions between Pt and HEREO have optimized the electronic structures for electron transfer and the binding strength of intermediates. This further leads to optimized proton binding and water dissociation, supporting the highly efficient and robust HER performances in different environments. This work provides a new idea for the design of efficient RE-based electrocatalysts. © 2024 American Chemical Society.
Original languageEnglish
Pages (from-to)9012-9025
JournalJournal of the American Chemical Society
Volume146
Issue number13
Online published22 Mar 2024
DOIs
Publication statusPublished - 3 Apr 2024
Externally publishedYes

Funding

We gratefully acknowledge the support from the National Key R&D Program of China (2021YFA1501101), the National Natural Science Foundation of China (22371131, 21971117), Research Grant Council of Hong Kong (15304023), National Natural Science Foundation of China/Research Grant Council of Hong Kong Joint Research Scheme (N_PolyU502/21), National Natural Science Foundation of China/Research Grants Council (RGC) of Hong Kong Collaborative Research Scheme (CRS_PolyU504_22), Functional Research Funds for the Central Nankai University (63186005), Tianjin Key Lab for Rare Earth Materials and Applications(ZB19500202), 111 Project (No. B18030) from China, Beijing-Tianjin-Hebei Collaborative Innovation Project (19YFSLQY00030), the Outstanding Youth Project of Tianjin 21 Natural Science Foundation (20JCJQJC00130), the Key Project of Tianjin Natural Science Foundation (20JCZDJC00650), Tianjin “131” Innovative Talent Team Construction Project, the Haihe Laboratory of Sustainable Chemical Transformations for financial support, the Rare Earth Advanced Materials Technology Innovation Center for financial support, the funding for Projects of Strategic Importance of The Hong Kong Polytechnic University (Project Code: 1-ZE2 V), Shenzhen Fundamental Research Scheme-General Program (JCYJ20220531090807017), Natural Science Foundation of Guangdong Province (2023A1515012219), and the Departmental General Research Fund (Project Code: ZVUL) from The Hong Kong Polytechnic University. B.H. also acknowledges the support from Research Centre for Carbon-Strategic Catalysis (RC–CSC), Research Institute for Smart Energy (RISE), and Research Institute for Intelligent Wearable Systems (RI-IWEAR) of the Hong Kong Polytechnic University.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

RGC Funding Information

  • RGC-funded

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