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Understanding the Role of Oxygen Vacancy Defects in Iridium-Leveraged MOFs-Type Catalyst

  • Xuefei Xu
  • , Hsiao Chien Chen
  • , Linfeng Li
  • , Muhammad Humayun
  • , Xia Zhang
  • , Huachuan Sun
  • , Jinzhi Jia
  • , Cailing Xu
  • , Mohamed Bououdina
  • , Libo Sun
  • , Xin Wang*
  • , Chundong Wang*
  • *此作品的通信作者
  • Huazhong University of Science and Technology
  • Prince Sultan University (PSU)
  • Yunnan University
  • Lanzhou University
  • City University of Hong Kong

研究成果: 期刊稿件文章同行評審

32 引文 斯高帕斯(Scopus)

摘要

Engineering oxygen vacancies (Vo) in metal–organic framework (MOF) is considered as an effective strategy to improve the hydrazine oxidation reaction (HzOR) performance. However, the role of Vo and the metal sites for HzOR is still not fully understood. Herein, this study reports the synthesis of a well-defined bimetallic VO-rich benzene dicarboxylic acid-based MOF (NiIr0.03-BDC) as a model to clarify the intricate catalytic mechanism. Operando characterizations demonstrate that the Vo-rich environment favors the adsorption of OH on the catalyst surface during the HzOR process, leading to the formation of Ni(OH)x active species. Theoretical calculations reveal that the introduced Ir at metal nodes not only boosts the HzOR activity of the Ni sites by tuning their electronic structure but also serves as the active sites for hydrogen evolution. As a result, the two-electrode electrolyzer with NiIr0.03-BDC || NiIr0.03-BDC configuration achieved 10 mA cm−2 at an ultralow cell voltage of 0.046 V. This work provides new insights into oxygen vacancy defect engineering of MOFs and paves a solid step for low-energy consumption hydrogen production.

原文英語
文章編號2408823
期刊Advanced Functional Materials
34
發行號48
DOIs
出版狀態已出版 - 26 11 2024

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© 2024 Wiley-VCH GmbH.

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