Unlocking Efficient Hydrogen Production: Nucleophilic Oxidation Reactions Coupled with Water Splitting

Author:

Wang Peng1,Zheng Jie2,Xu Xue1,Zhang Yu‐Qing2,Shi Qiao‐Fu2,Wan Yong1,Ramakrishna Seeram3,Zhang Jun1,Zhu Liyang4,Yokoshima Tokihiko4,Yamauchi Yusuke456ORCID,Long Yun‐Ze1

Affiliation:

1. Shandong Key Laboratory of Medical and Health Textile Materials College of Physics Qingdao University Qingdao 266071 P. R. China

2. Industrial Research Institute of Nonwovens & Technical Textiles Shandong Center for Engineered Nonwovens (SCEN) College of Textiles Clothing Qingdao University Qingdao 266071 P. R. China

3. Center for Nanotechnology & Sustainability Department of Mechanical Engineering College of Design and Engineering National University of Singapore 9 Engineering Drive 1 Singapore 117576 Singapore

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

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

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

Abstract

AbstractElectrocatalytic water splitting driven by sustainable energy is a clean and promising water‐chemical fuel conversion technology for the production of high‐purity green hydrogen. However, the sluggish kinetics of anodic oxygen evolution reaction (OER) pose challenges for large‐scale hydrogen production, limiting its efficiency and safety. Recently, the anodic OER has been replaced by a nucleophilic oxidation reaction (NOR) with biomass as the substrate and coupled with a hydrogen evolution reaction (HER), which has attracted great interest. Anode NOR offers faster kinetics, generates high‐value products, and reduces energy consumption. By coupling NOR with hydrogen evolution reaction, hydrogen production efficiency can be enhanced while yielding high‐value oxidation products or degrading pollutants. Therefore, NOR‐coupled HER hydrogen production is another new green electrolytic hydrogen production strategy after electrolytic water hydrogen production, which is of great significance for realizing sustainable energy development and global decarbonization. This review explores the potential of nucleophilic oxidation reactions as an alternative to OER and delves into NOR mechanisms, guiding future research in NOR‐coupled hydrogen production. It assesses different NOR‐coupled production methods, analyzing reaction pathways and catalyst effects. Furthermore, it evaluates the role of electrolyzers in industrialized NOR‐coupled hydrogen production and discusses future prospects and challenges. This comprehensive review aims to advance efficient and economical large‐scale hydrogen production.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shandong Province

Publisher

Wiley

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