白金超え次世代合金のメソポーラス単結晶化で高性能触媒~メタノール分解効率が従来の2.9倍に~

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2025-06-10 名古屋大学

白金超え次世代合金のメソポーラス単結晶化で高性能触媒~メタノール分解効率が従来の2.9倍に~

名古屋大学、早稲田大学、物質・材料研究機構の共同研究チームは、白金を超える性能を持つ「メソポーラス単結晶高エントロピー合金」の開発に成功しました。5種類以上の金属を均等に混ぜた合金をナノ多孔質構造の単結晶として合成し、メタノール分解触媒として従来の白金触媒の2.9倍の性能を達成。さらに約2,500回の充放電後も93%の性能を維持し、高い耐久性も実証しました。本成果は燃料電池への応用が期待され、白金代替材料として環境負荷低減にも貢献します。

<関連情報>

メソポーラス単結晶高エントロピー合金 Mesoporous Single-Crystal High-Entropy Alloy

Ravi Nandan,Ho Ngoc Nam,Quan Manh Phung,Hiroki Nara,Joel Henzie,and Yusuke Yamauchi
Journal of the American Chemical Society  Published: May 27, 2025
DOI:https://doi.org/10.1021/jacs.5c01260

Abstract

Mesoporous high-entropy alloys (HEAs) represent a promising advancement in mesoporous metals, showing great potential for various applications. Their unique multi-metallic uniformity, strong structural features, and high surface-active-site exposure contribute to their practical catalytic ability. The catalytic efficiency of metal nanostructures depends on both their elemental compositions and crystallinity, with single-crystalline structures generally outperforming polycrystalline ones. However, synthesizing single-crystalline HEA nanostructures with defined mesoporosity remains challenging due to the complex fabrication process. This study introduces a block copolymer micelle-assisted soft-chemical strategy to create single-crystalline mesoporous HEAs (SCPHEAs). These structures feature uniformly sized mesopores that permeate the entire structure, maximizing the exposure of HEA active sites, enhancing material utilization, and facilitating efficient mass and charge transport. The optimized SCPHEAs exhibit excellent electrocatalytic performance in methanol oxidation reactions, surpassing polycrystalline mesoporous HEAs, commercial Pt–C, and various recently reported precious metal-based HEAs and conventional alloy electrocatalysts. This superior performance is attributed to a synergistic effect that results from surface charge redistribution among different atomic entities, which enhances the adsorption of methanol and water molecules and mitigates intermediate CO poisoning. Our synthesis method enables the design of a wide range of mesoporous HEAs with controllable morphology and crystallinity tailored for various catalytic applications and beyond.

0703金属材料
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