阴离子交换膜电解长期稳定性研究进展及展望

Future Batteries Pub Date : 2025-02-01 Epub Date: 2025-01-09 DOI:10.1016/j.fub.2025.100024
Zhiqing Tang , Baoxin Wu , Kejun Yan , Jiahui Luo , Mahmood Ul Haq , Lin Zeng
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引用次数: 0

摘要

阴离子交换膜电解(AEMWE)是一种新兴的绿色制氢技术,它结合了碱性电解和质子交换膜电解的优点,是一种极具发展前景的制氢技术。确保AEMWE的稳定性对其商业化和大规模应用至关重要。本文首先简要分析了AEMWE的原理、近年来的研究成果以及影响催化剂和膜稳定性的关键因素,并对近年来的研究进展进行了总结。同时,从工程角度分析了气泡动力学和操作条件(如温度、电解质流速、电流密度和操作压力)对AEMWE稳定性的影响。最后,本文总结了与AEMWE稳定性相关的挑战和最新进展,为开发耐用电解槽提供了有价值的指导。
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Long-term stability for anion exchange membrane water electrolysis: Recent development and future perspectives
Anion exchange membrane water electrolysis (AEMWE), an emerging green hydrogen technology, combines the benefits of alkaline water electrolysis and proton exchange membrane water electrolysis positioning it as a highly promising hydrogen production technology. Ensuring AEMWE stability is critical for its commercialization and large-scale application. This review firstly presents a concise analysis of AEMWE principles, recent achievements, and key factors influencing catalyst and membrane stability, along with a summary of recent advancements. Meanwhile, from an engineering perspective, this review examines the impact of bubble dynamics and operational conditions such as temperature, electrolyte flow rate, current density, and operating pressure on AEMWE stability. In the end, this review summarized the challenges and recent advances related to AEMWE stability and provided valuable guidelines for developing durable electrolyzer.
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