电催化水分解技术的发展现状:从实验到工业

IF 13.4 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Duy Thanh Tran, Phan Khanh Linh Tran, Deepanshu Malhotra, Thanh Hai Nguyen, Tran Thien An Nguyen, Nguyen Tram Anh Duong, Nam Hoon Kim, Joong Hee Lee
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引用次数: 0

摘要

利用高效的电催化剂通过电化学水分解将电能转化为氢气已经成为未来创造大量清洁和可再生能源的最重要技术之一。低温电解槽系统,如质子交换膜水电解槽、碱性水电解槽、阴离子交换膜水电解槽等,处于当前技术的前沿。然而,它们的性能通常取决于电力成本和系统效率,通过开发高性能电催化剂来增强阴极析氢反应和阳极析氧反应的动力学,可以显着提高这一点。尽管在催化剂开发方面进行了大量积极的研究,但水电解的性能仍然不足以实现商业化。对创新电催化剂的持续研究和对催化机理的理解对于提高其在电解槽中的活性和稳定性至关重要。这仍然是学术机构/大学和工业研发中心关注的焦点。本文综述了电化学制氢的电催化剂和水电解槽的现状和未来发展方向。此外,我们还详细描述了全球相关公司使用的电催化剂和水电解槽制氢的技术框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Current status of developed electrocatalysts for water splitting technologies: from experimental to industrial perspective

The conversion of electricity into hydrogen (H2) gas through electrochemical water splitting using efficient electrocatalysts has been one of the most important future technologies to create vast amounts of clean and renewable energy. Low-temperature electrolyzer systems, such as proton exchange membrane water electrolyzers, alkaline water electrolyzers, and anion exchange membrane water electrolyzers are at the forefront of current technologies. Their performance, however, generally depends on electricity costs and system efficiency, which can be significantly improved by developing high-performance electrocatalysts to enhance the kinetics of both the cathodic hydrogen evolution reaction and the anodic oxygen evolution reaction. Despite numerous active research efforts in catalyst development, the performance of water electrolysis remains insufficient for commercialization. Ongoing research into innovative electrocatalysts and an understanding of the catalytic mechanisms are critical to enhancing their activity and stability for electrolyzers. This is still a focus at academic institutes/universities and industrial R&D centers. Herein, we provide an overview of the current state and future directions of electrocatalysts and water electrolyzers for electrochemical H2 production. Additionally, we describe in detail the technological framework of electrocatalysts and water electrolyzers for H2 production as utilized by relevant global companies.

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来源期刊
Nano Convergence
Nano Convergence Engineering-General Engineering
CiteScore
15.90
自引率
2.60%
发文量
50
审稿时长
13 weeks
期刊介绍: Nano Convergence is an internationally recognized, peer-reviewed, and interdisciplinary journal designed to foster effective communication among scientists spanning diverse research areas closely aligned with nanoscience and nanotechnology. Dedicated to encouraging the convergence of technologies across the nano- to microscopic scale, the journal aims to unveil novel scientific domains and cultivate fresh research prospects. Operating on a single-blind peer-review system, Nano Convergence ensures transparency in the review process, with reviewers cognizant of authors' names and affiliations while maintaining anonymity in the feedback provided to authors.
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