Your browser doesn't support javascript.
loading
Highly active and stable surface structure for oxygen evolution reaction originating from balanced dissolution and strong connectivity in BaIrO3 solid solutions.
Hirai, Shigeto; Yagi, Shunsuke; Oh, He-Chan; Sato, Yoshiki; Liu, Wei; Liu, En-Pei; Chen, Wei-Tin; Miura, Akira; Nagao, Masanori; Ohno, Tomoya; Matsuda, Takeshi.
Afiliação
  • Hirai S; School of Earth, Energy and Environmental Engineering, Kitami Institute of Technology 165 Koen-cho Kitami 090-8507 Japan hirai@mail.kitami-it.ac.jp.
  • Yagi S; Institute of Industrial Science, The University of Tokyo 4-6-1 Komaba Meguro-ku Tokyo 153-8505 Japan.
  • Oh HC; School of Earth, Energy and Environmental Engineering, Kitami Institute of Technology 165 Koen-cho Kitami 090-8507 Japan hirai@mail.kitami-it.ac.jp.
  • Sato Y; School of Earth, Energy and Environmental Engineering, Kitami Institute of Technology 165 Koen-cho Kitami 090-8507 Japan hirai@mail.kitami-it.ac.jp.
  • Liu W; Institute of Industrial Science, The University of Tokyo 4-6-1 Komaba Meguro-ku Tokyo 153-8505 Japan.
  • Liu EP; Center for Condensed Matter Sciences and Center of Atomic Initiative for New Materials, National Taiwan University Taipei 10617 Taiwan.
  • Chen WT; Center for Condensed Matter Sciences and Center of Atomic Initiative for New Materials, National Taiwan University Taipei 10617 Taiwan.
  • Miura A; Taiwan Consortium of Emergent Crystalline Materials, Ministry of Science and Technology Taipei 10622 Taiwan.
  • Nagao M; Graduate School of Chemical Sciences and Engineering and Faculty of Engineering, Hokkaido University Sapporo 060-8628 Japan.
  • Ohno T; University of Yamanashi 7-32 Miyamae Kofu Yamanashi 400-0021 Japan.
  • Matsuda T; School of Earth, Energy and Environmental Engineering, Kitami Institute of Technology 165 Koen-cho Kitami 090-8507 Japan hirai@mail.kitami-it.ac.jp.
RSC Adv ; 12(37): 24427-24438, 2022 Aug 22.
Article em En | MEDLINE | ID: mdl-36128544
Catalysts for the oxygen evolution reaction (OER) are receiving great interest since OER remains the bottleneck of water electrolyzers for hydrogen production. Especially, OER in acidic solutions is crucial since it produces high current densities and avoids precipitation of carbonates. However, even the acid stable iridates undergo severe dissolution during the OER. BaIrO3 has the strongest IrO6 connectivity and stable surface structure, yet it suffers from lattice collapse after OER cycling, making it difficult to improve the OER durability. In the present study, we have successfully developed an OER catalyst with both high intrinsic activity and stability under acidic conditions by preventing the lattice collapse after repeated OER cycling. Specifically, we find that the substitution of Ir-site with Mn for BaIrO3 in combination with OER cycling leads to a remarkable activity enhancement by a factor of 28 and an overall improvement in stability. This dual enhancement of OER performance was accomplished by the novel strategy of slightly increasing the Ir-dissolution and balancing the elemental dissolution in BaIr1-x Mn x O3 to reconstruct a rigid surface with BaIrO3-type structure. More importantly, the mass activity for BaIr0.8Mn0.2O3 reached ∼73 times of that for IrO2, making it a sustainable and promising OER catalyst for energy conversion technologies.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: RSC Adv Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: RSC Adv Ano de publicação: 2022 Tipo de documento: Article