Tailored Design of Mesoporous Nanospheres with High Entropic Alloy Sites for Efficient Redox Electrocatalysis

Author:

Nandan Ravi1ORCID,Nara Hiroki2ORCID,Nam Ho Ngoc3ORCID,Phung Quan Manh45ORCID,Ngo Quynh Phuong6ORCID,Na Jongbeom678ORCID,Henzie Joel1,Yamauchi Yusuke1389ORCID

Affiliation:

1. Research Center for Materials Nanoarchitectonics National Institute for Materials Science (NIMS) 1‐1 Namiki Tsukuba Ibaraki 305‐0044 Japan

2. Waseda Research Institute for Science and Engineering Waseda University 3‐4‐1 Okubo Shinjuku Tokyo 169‐8555 Japan

3. Department of Materials Process Engineering Graduate School of Engineering Nagoya University Nagoya 464‐8603 Japan

4. Department of Chemistry Graduate School of Science Nagoya University Furo‐cho, Chikusa‐ku Nagoya 464‐8602 Japan

5. Institute of Transformative Bio‐Molecules (WPI‐ITbM) Nagoya University Furo‐cho, Chikusa‐ku Nagoya 464‐8601 Japan

6. Materials Architecturing Research Center Korea Institute of Science and Technology (KIST) 5, Hwarang‐ro 14‐gil, Seongbuk‐gu Seoul 02792 Republic of Korea

7. KHU‐KIST Department of Converging Science and Technology Kyung Hee University Seoul 02447 Republic of Korea

8. School of Chemical Engineering and Australian Institute for Bioengineering and Nanotechnology (AIBN) The University of Queensland Brisbane QLD 4072 Australia

9. Department of Plant & Environmental New Resources Kyung Hee University 1732, Deogyeong‐daero, Giheung‐gu Yongin‐si Gyeonggi‐do 17104 Republic of Korea

Abstract

AbstractHigh Entropy Alloys (HEAs) are a versatile material with unique properties, tailored for various applications. They enable pH‐sensitive electrocatalytic transformations like hydrogen evolution reaction (HER) and hydrogen oxidation reactions (HOR) in alkaline media. Mesoporous nanostructures with high surface area are preferred for these electrochemical reactions, but designing mesoporous HEA sis challenging. To overcome this challenge, a low‐temperature triblock copolymer‐assisted wet‐chemical approach is developed to produce mesoporous HEA nanospheres composed of PtPdRuMoNi systems with sufficient entropic mixing. Owing to active sites with inherent entropic effect, mesoporous features, and increased accessibility, optimized HEA nanospheres promote strong HER/HOR performance in alkaline medium. At 30 mV nominal overpotential, it exhibits a mass activity of ≈167 (HER) and 151 A gPt−1 (HOR), far exceeding commercial Pt‐C electrocatalysts (34 and 48 A gPt−1) and many recently reported various alloys. The Mott‐Schottky analysis reveals HEA nanospheres inherit high charge carrier density, positive flat band potential, and smaller charge transfer barrier, resulting in better activity and faster kinetics. This micelle‐assisted synthetic enable the exploration of the compositional and configurational spaces of HEAs at relatively low temperature, while simultaneously facilitating the introduction of mesoporous nanostructures for a wide range of catalytic applications.

Funder

Japan Society for the Promotion of Science

National Research Foundation of Korea

Nagoya University

Exploratory Research for Advanced Technology

Publisher

Wiley

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