Zhang Chao, Low Jingxiang, Xiong Yujie
Hefei National Laboratory for Physical Sciences at the Microscale, Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Materials Science, University of Science and Technology of China, Hefei, Anhui 230026, China.
Precis Chem. 2024 Apr 30;2(6):229-238. doi: 10.1021/prechem.4c00020. eCollection 2024 Jun 24.
Hydrogen economy, which proposes employing hydrogen to replace or supplement the current fossil-fuel-based energy economy system, is widely accepted as the future energy scheme for the sustainable and green development of human society. While the hydrogen economy has shown tremendous potential, the associated challenges with hydrogen production and storage remain significant barriers to wide applications. In light of this consideration, the integration of green hydrogen production and storage through electrocatalysis for direct production of chemical hydrogen storage media has emerged as a potential solution to these challenges. Specifically, through electrocatalysis, CO and HO can be converted into methanol or formic acid, while N or NO along with HO can be transformed into ammonia, streamlining the hydrogen economy scheme. In this Perspective, we provide an overview of recent developments in this technology. Additionally, we briefly discuss the general properties and corresponding production strategies via the electrolysis of these chemical hydrogen storage media. Finally, we conclude by offering insights into future perspectives in this field, anticipating that the successful advancement of such technology will propel the development of the hydrogen economy toward practical implementation.
氢能经济提议使用氢来替代或补充当前基于化石燃料的能源经济系统,它被广泛认为是人类社会可持续绿色发展的未来能源方案。尽管氢能经济已展现出巨大潜力,但制氢和储氢相关的挑战仍然是广泛应用的重大障碍。鉴于此,通过电催化将绿色制氢与储氢相结合以直接生产化学储氢介质已成为应对这些挑战的一种潜在解决方案。具体而言,通过电催化,一氧化碳和水可以转化为甲醇或甲酸,而氮气或一氧化氮与水可以转化为氨,从而简化了氢能经济方案。在这篇观点文章中,我们概述了该技术的最新进展。此外,我们简要讨论了这些化学储氢介质通过电解的一般性质及相应生产策略。最后,我们通过对该领域未来前景的展望得出结论,预计此类技术的成功推进将推动氢能经济朝着实际应用发展。