Huang Xiao, Song Min, Zhang Jingjing, Shen Tao, Luo Guanyu, Wang Deli
Key Laboratory of Material Chemistry for Energy Conversion and Storage, Ministry of Education, School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology, Wuhan, 430074, People's Republic of China.
Hubei Key Laboratory of Processing and Application of Catalytic Materials, College of Chemistry and Chemical Engineering, Huanggang Normal University, Huanggang, 438000, People's Republic of China.
Nanomicro Lett. 2023 Apr 7;15(1):86. doi: 10.1007/s40820-023-01044-2.
Electrochemical synthesis of HO via a selective two-electron oxygen reduction reaction has emerged as an attractive alternative to the current energy-consuming anthraquinone process. Herein, the progress on electrocatalysts for HO generation, including noble metal, transition metal-based, and carbon-based materials, is summarized. At first, the design strategies employed to obtain electrocatalysts with high electroactivity and high selectivity are highlighted. Then, the critical roles of the geometry of the electrodes and the type of reactor in striking a balance to boost the HO selectivity and reaction rate are systematically discussed. After that, a potential strategy to combine the complementary properties of the catalysts and the reactor for optimal selectivity and overall yield is illustrated. Finally, the remaining challenges and promising opportunities for high-efficient HO electrochemical production are highlighted for future studies.
通过选择性双电子氧还原反应电化学合成过氧化氢已成为当前耗能蒽醌法颇具吸引力的替代方法。本文总结了用于生成过氧化氢的电催化剂的进展,包括贵金属、过渡金属基和碳基材料。首先,重点介绍了用于获得具有高电活性和高选择性的电催化剂的设计策略。然后,系统地讨论了电极几何形状和反应器类型在平衡提高过氧化氢选择性和反应速率方面的关键作用。之后,阐述了一种结合催化剂和反应器的互补特性以实现最佳选择性和总产率的潜在策略。最后,强调了高效电化学生产过氧化氢面临的剩余挑战和未来研究的潜在机遇。