Laser scribed proton exchange membranes for enhanced fuel cell performance and stability

被引:1
|
作者
Chen, Jianuo [1 ,2 ]
Lu, Xuekun [3 ]
Wang, Lingtao [4 ]
Du, Wenjia [1 ,5 ]
Guo, Hengyi [4 ]
Rimmer, Max [4 ]
Zhai, Heng [2 ]
Liu, Yuhan [1 ]
Shearing, Paul R. [5 ]
Haigh, Sarah J. [4 ]
Holmes, Stuart M. [2 ]
Miller, Thomas S. [1 ]
机构
[1] Unov Coll London, Dept Chem Engn, Electrochem Innovat Lab, London, England
[2] UNIV MANCHESTER, Dept Chem Engn, MANCHESTER, England
[3] Queen Mary Univ London, Sch Engn & Mat Sci, London, England
[4] Univ Manchester, Dept Mat, Manchester, England
[5] Univ Oxford, Dept Engn Sci, Oxford, England
基金
英国工程与自然科学研究理事会; 欧洲研究理事会;
关键词
DIFFUSION LAYER; PHOSPHORIC-ACID; PEM; GRAPHENE; MODEL; TRANSPORT; RAMAN; FLOW;
D O I
10.1038/s41467-024-55070-8
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
High-temperature proton exchange membrane fuel cells (HT-PEMFCs) offer solutions to challenges intrinsic to low-temperature PEMFCs, such as complex water management, fuel inflexibility, and thermal integration. However, they are hindered by phosphoric acid (PA) leaching and catalyst migration, which destabilize the critical three-phase interface within the membrane electrode assembly (MEA). This study presents an innovative approach to enhance HT-PEMFC performance through membrane modification using picosecond laser scribing, which optimises the three-phase interface by forming a graphene-like structure that mitigates PA leaching. Our results demonstrate that laser-induced modification of PA-doped membranes, particularly on the cathode side, significantly enhances the performance and durability of HT-PEMFCs, achieving a peak power density of 817.2 mW cm(-)(2) after accelerated stress testing, representing a notable 58.2% increase compared to untreated membranes. Furthermore, a comprehensive three-dimensional multi-physics model, based on X-ray micro-computed tomography data, was employed to visualise and quantify the impact of this laser treatment on the dynamic electrochemical processes within the MEA. Hence, this work provides both a scalable methodology to stabilise an important future membrane technology, and a clear mechanistic understanding of how this targeted laser modification acts to optimise the three-phase interface of HT-PEMFCs, which can have impact across a wide array of applications.
引用
收藏
页数:18
相关论文
共 50 条
  • [21] Enhanced performance and stability of high temperature proton exchange membrane fuel cell by incorporating zirconium hydrogen phosphate in catalyst layer
    Barron, Olivia
    Su, Huaneng
    Linkov, Vladimir
    Pollet, Bruno G.
    Pasupathi, Sivakumar
    JOURNAL OF POWER SOURCES, 2015, 278 : 718 - 724
  • [22] Performance of a proton exchange membrane fuel cell stack
    Johnson, R.
    Morgan, C.
    Witmer, D.
    Johnson, T.
    International Journal of Non-Linear Mechanics, 2001, 36 (08) : 879 - 887
  • [23] Study on performance of proton exchange membrane fuel cell with reformate fuel
    Yu, H.M.
    Yi, B.L.
    Bi, K.W.
    Hou, Z.J.
    Lin, Z.Y.
    Han, M.
    Dianyuan Jishu/Chinese Journal of Power Sources, 2001, 25 (04):
  • [24] Electrolyte membranes for intermediate temperature proton exchange membrane fuel cell
    Tao Xiao
    Ranran Wang
    Zhou Chang
    Zhongwei Fang
    Zuolei Zhu
    Chenxi Xu
    ProgressinNaturalScience:MaterialsInternational, 2020, 30 (06) : 743 - 750
  • [25] A novel strategy for accelerating degradation of proton exchange membranes in fuel cell
    Yang, Weiguang
    Guo, Hui
    Niu, Fuquan
    Wang, Bingjie
    Huang, Bin
    Niu, Sirui
    Liu, Jianli
    Yang, Shuting
    Yang, Yange
    RENEWABLE ENERGY, 2023, 213 : 38 - 46
  • [26] Perfluorinated block-copolymers for proton exchange fuel cell membranes
    Argall, Aaron
    Hager, Cassandra
    Mueller, Anja
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2016, 252
  • [27] Research progress on proton exchange membranes for direct methanol fuel cell
    Chen, Y
    Tang, YW
    Liu, CP
    Xing, W
    Lu, TH
    ACTA PHYSICO-CHIMICA SINICA, 2005, 21 (04) : 458 - 462
  • [28] Electrolyte membranes for intermediate temperature proton exchange membrane fuel cell
    Xiao, Tao
    Wang, Ranran
    Chang, Zhou
    Fang, Zhongwei
    Zhu, Zuolei
    Xu, Chenxi
    PROGRESS IN NATURAL SCIENCE-MATERIALS INTERNATIONAL, 2020, 30 (06) : 743 - 750
  • [29] Branched Polymer Materials as Proton Exchange Membranes for Fuel Cell Applications
    Neelakandan, Sivasubramaniyan
    Wang, Li
    Zhang, Boping
    Ni, Jiangpeng
    Hu, Meishao
    Gao, Chunmei
    Wong, Wai-Yeung
    Wang, Lei
    POLYMER REVIEWS, 2022, 62 (02) : 261 - 295
  • [30] Performance comparison of three common proton exchange membranes for sustainable bioenergy production in microbial fuel cell
    Ghasemi, Mostafa
    Halakoo, Elnaz
    Sedighi, Mehdi
    Alam, Javed
    Sadeqzadeh, Majid
    12TH GLOBAL CONFERENCE ON SUSTAINABLE MANUFACTURING - EMERGING POTENTIALS, 2015, 26 : 162 - 166