Nanofiber-based polymer electrolyte membranes for fuel cells

IF 24.2 1区 材料科学 Q1 CHEMISTRY, PHYSICAL
Carbon Energy Pub Date : 2025-01-23 DOI:10.1002/cey2.677
Ning Liu, Shuguang Bi, Yi Zhang, Ying Ou, Chunli Gong, Jianhua Ran, Yihuang Chen, Yingkui Yang
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Abstract

Developing low-cost and high-performance nanofiber-based polyelectrolyte membranes for fuel cell applications is a promising solution to energy depletion. Due to the high specific surface area and one-dimensional long-range continuous structure of the nanofiber, ion-charged groups can be induced to form long-range continuous ion transfer channels in the nanofiber composite membrane, significantly increasing the ion conductivity of the membrane. This review stands apart from previous endeavors by offering a comprehensive overview of the strategies employed over the past decade in utilizing both electrospun and natural nanofibers as key components of proton exchange membranes and anion exchange membranes for fuel cells. Electrospun nanofibers are categorized based on their material properties into two primary groups: (1) ionomer nanofibers, inherently endowed with the ability to conduct H+ (such as perfluorosulfonic acid or sulfonated poly(ether ether ketone)) or OH (e.g., FAA-3), and (2) nonionic polymer nanofibers, comprising inert polymers like polyvinylidene difluoride, polytetrafluoroethylene, and polyacrylonitrile. Notably, the latter often necessitates surface modifications to impart ion transport channels, given their inherent proton inertness. Furthermore, this review delves into the recent progress made with three natural nanofibers derived from biodegradable cellulose—cellulose nanocrystals, cellulose nanofibers, and bacterial nanofibers—as crucial elements in polyelectrolyte membranes. The effect of the physical structure of such nanofibers on polyelectrolyte membrane properties is also briefly discussed. Lastly, the review emphasizes the challenges and outlines potential solutions for future research in the field of nanofiber-based polyelectrolyte membranes, aiming to propel the development of high-performance polymer electrolyte fuel cells.

Abstract Image

燃料电池用纳米纤维聚合物电解质膜
开发用于燃料电池的低成本、高性能纳米纤维基聚电解质膜是解决能源消耗的一个很有前途的方法。由于纳米纤维的高比表面积和一维远程连续结构,可诱导带离子基团在纳米纤维复合膜内形成远程连续离子传递通道,显著提高膜的离子电导率。这篇综述与以往的研究不同,全面概述了过去十年来在利用静电纺和天然纳米纤维作为燃料电池质子交换膜和阴离子交换膜的关键成分方面所采用的策略。静电纺纳米纤维根据其材料性质分为两大类:(1)离子纳米纤维,固有地具有传导H+(如全氟磺酸或磺化聚(醚醚酮))或OH -(如FAA-3)的能力;(2)非离子聚合物纳米纤维,包括惰性聚合物,如聚偏二氟乙烯、聚四氟乙烯和聚丙烯腈。值得注意的是,由于其固有的质子惰性,后者通常需要表面修饰来传递离子传输通道。此外,本文综述了从可生物降解纤维素中提取的三种天然纳米纤维——纤维素纳米晶体、纤维素纳米纤维和细菌纳米纤维——作为聚电解质膜的关键元素的最新进展。本文还简要讨论了纳米纤维的物理结构对聚电解质膜性能的影响。最后,综述了纳米纤维基聚电解质膜研究面临的挑战和未来可能的解决方案,旨在推动高性能聚合物电解质燃料电池的发展。
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来源期刊
Carbon Energy
Carbon Energy Multiple-
CiteScore
25.70
自引率
10.70%
发文量
116
审稿时长
4 weeks
期刊介绍: Carbon Energy is an international journal that focuses on cutting-edge energy technology involving carbon utilization and carbon emission control. It provides a platform for researchers to communicate their findings and critical opinions and aims to bring together the communities of advanced material and energy. The journal covers a broad range of energy technologies, including energy storage, photocatalysis, electrocatalysis, photoelectrocatalysis, and thermocatalysis. It covers all forms of energy, from conventional electric and thermal energy to those that catalyze chemical and biological transformations. Additionally, Carbon Energy promotes new technologies for controlling carbon emissions and the green production of carbon materials. The journal welcomes innovative interdisciplinary research with wide impact. It is indexed in various databases, including Advanced Technologies & Aerospace Collection/Database, Biological Science Collection/Database, CAS, DOAJ, Environmental Science Collection/Database, Web of Science and Technology Collection.
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