Conductive Polymer and Nanoparticle-Promoted Polymer Hybrid Coatings for Metallic Bipolar Plates in Proton Membrane Exchange Water Electrolysis

被引:21
作者
Liu, Gaoyang [1 ,2 ]
Hou, Faguo [1 ,2 ]
Wang, Xindong [1 ,2 ]
Fang, Baizeng [1 ,2 ]
机构
[1] Univ Sci & Technol Beijing, Dept Energy Storage Sci & Technol, 30 Coll Rd, Beijing 100083, Peoples R China
[2] Univ Sci & Technol Beijing, Dept Met & Ecol Engn, 30 Coll Rd, Beijing 100083, Peoples R China
来源
APPLIED SCIENCES-BASEL | 2023年 / 13卷 / 03期
关键词
proton exchange membrane water electrolysis; bipolar plates; conductive polymer; inorganic nanoparticles; coatings; corrosion resistance; contact resistance; 316L STAINLESS-STEEL; CORROSION PROTECTION; FUEL-CELL; POLYPYRROLE COATINGS; SURFACE MODIFICATION; SILANE; POLYANILINE; ELECTRODEPOSITION; PERFORMANCE; COMPOSITES;
D O I
10.3390/app13031244
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Proton exchange membrane water electrolysis (PEMWE) is a green hydrogen production technology with great development prospects. As an important part of PEMWE, bipolar plates (BPs) play an important role and put forward special requirements due to the harsh environments on both the anode and cathode. Recently, metal-based BPs, particularly stainless steel and titanium BPs have attracted much attention from researchers all over the world because of their advantages of high corrosion resistance, low resistivity, high thermal conductivity, and low permeability. However, these metallic BPs are still prone to being oxidized and are facing with hydrogen embrittlement problems in the PEMWE working environment, which would result in reduced output power and premature failure of the PEMWE stack. In order to reduce the corrosion rate and maintain low interfacial contact resistance, the surface modification of the metallic BPs with protective coatings, such as precious metals (e.g., Au, Pt, etc.) and metal nitrides/carbides, etc., have been extensively investigated. However, the above-mentioned coating materials are restricted by the high-cost materials, complex equipment, and the complicated operation process. In this review, the surface modification of metallic BPs based on silane treatment, conductive polymers, e.g., polyaniline (PANI) and polypyrrole (PPy) as well as some nanoparticles-promoted polymer hybrid coatings which have been investigated for PEMWE, are summarized and reviewed. As for the silane treatment, the dense silane can not only effectively enhance the corrosion resistance but also improve the adhesion between the substrate and the conductive polymers. As for PANI and PPy, the typical value of corrosion current density of a PANI coating is 5.9 mu A cm(-2), which is significantly lower than 25.68 mu A cm(-2) of the bare metal plate. The introduction of nanosized conductive particles in PANI can further reduce the corrosion current density to 0.15 mu A cm(-2). However, further improvement in the electrical conductivity is still desired to decrease the interface contact resistance (ICR) to be lower than 10 m ohm cm(2). In addition, serious peeling off of the coating during long-term operation also needs to be solved. Typically, the conductive polymer reinforced by graphene, noble metals, and their compounds in the form of nanoparticle-promoted polymer hybrid coatings could be a good choice to obtain higher corrosion resistance, durability, and conductivity and to extend the service life of PEMWE. Especially, nanoparticle-promoted polymer hybrid coatings consisting of polymers and conductive noble metals or nitrides/carbides can be controlled to balance the conductivity and mechanical properties. Due to the advantages of a simple preparation process, low cost, and large-scale production, nanoparticle-promoted polymer hybrid coatings have gradually become a research hotspot. This review is believed to enrich the knowledge of the large-scale preparation process and applications of BPs for PEMWE.
引用
收藏
页数:17
相关论文
共 109 条
  • [1] Abdullah Shivan Ismael, 2015, HBRC Journal, V11, P151, DOI 10.1016/j.hbrcj.2014.06.001
  • [2] Abu-Thabit NY, 2014, WOODH PUBL SER METAL, P459, DOI 10.1533/9780857096883.2.459
  • [3] Electrodeposition of conductive PAMT/PPY bilayer composite coatings on 316L stainless steel plate for PEMFC application
    Akula, Srinu
    Kalaiselvi, Patchaiah
    Sahu, Akhila Kumar
    Chellammal, Subbiah
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (34) : 17909 - 17921
  • [4] Alaswad A., 2015, REFERENCE MODULE MAT, DOI [10.1016/B978-0-12-803581-8.04009-1, DOI 10.1016/B978-0-12-803581-8.04009-1]
  • [5] Aliofkhazraei M., 2014, Comprehensive materials processing, P49, DOI [10.1016/B978-0-08-096532-1.00705-6, DOI 10.1016/B978-0-08-096532-1.00705-6]
  • [6] A study of the effects of the matrix epoxy resin and graphene oxide (GO) manufacturing process on the tensile behavior of GO-epoxy nanocomposites
    Arguelles, A.
    Vina, J.
    Rubiera, S.
    Vina, I.
    Bonhomme, J.
    Mollon, V.
    [J]. PLASTICS RUBBER AND COMPOSITES, 2017, 46 (09) : 405 - 412
  • [7] Coating of stainless steel and titanium bipolar plates for anticorrosion in PEMFC: A review
    Asri, Nur Fawwaz
    Husaini, Teuku
    Sulong, Abu Bakar
    Majlan, Edy Herianto
    Daud, Wan Ramli Wan
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (14) : 9135 - 9148
  • [8] Research Advances Towards Low Cost, High Efficiency PEM Electrolysis
    Ayers, K. E.
    Anderson, E. B.
    Capuano, C. B.
    Carter, B. D.
    Dalton, L. T.
    Hanlon, G.
    Manco, J.
    Niedzwiecki, M.
    [J]. POLYMER ELECTROLYTE FUEL CELLS 10, PTS 1 AND 2, 2010, 33 (01): : 3 - 15
  • [9] Understanding and mitigating hydrogen embrittlement of steels: a review of experimental, modelling and design progress from atomistic to continuum
    Barrera, O.
    Bombac, D.
    Chen, Y.
    Daff, T. D.
    Galindo-Nava, E.
    Gong, P.
    Haley, D.
    Horton, R.
    Katzarov, I.
    Kermode, J. R.
    Liverani, C.
    Stopher, M.
    Sweeney, F.
    [J]. JOURNAL OF MATERIALS SCIENCE, 2018, 53 (09) : 6251 - 6290
  • [10] Bezdek Roger H., 2020, ECS Transactions, V96, P107, DOI 10.1149/09601.0107ecst