Comparative review of corrosion-resistant coatings on metal bipolar plates of proton exchange membrane fuel cells

Jiaming Liu , Qian Hu , Sandrick Sabola , Yue Zhang , Biao Du , Xianzong Wang

International Journal of Minerals, Metallurgy, and Materials ›› 2024, Vol. 31 ›› Issue (12) : 2627 -2644.

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International Journal of Minerals, Metallurgy, and Materials ›› 2024, Vol. 31 ›› Issue (12) :2627 -2644. DOI: 10.1007/s12613-024-2946-0
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Comparative review of corrosion-resistant coatings on metal bipolar plates of proton exchange membrane fuel cells
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Abstract

In the realm of proton exchange membrane fuel cells (PEMFCs), the bipolar plates (BPs) are indispensable and serve pivotal roles in distributing reactant gases, collecting current, facilitating product water removal, and cooling the stack. Metal BPs, characterized by outstanding manufacturability, cost-effectiveness, higher power density, and mechanical strength, are emerging as viable alternatives to traditional graphite BPs. The foremost challenge for metal BPs lies in enhancing their corrosion resistance and conductivity under acidic conditions, necessitating the application of various coatings on their surfaces to ensure superior performance. This review summarizes and compares recent advancements in the research of eight distinct types of coatings for BPs in PEMFCs, including noble metal, carbide, nitride, and amorphous carbon (a-C)/metal compound composite coatings. The various challenges encountered in the manufacturing and future application of these coatings are also delineated.

Keywords

proton exchange membrane fuel cells / metallic bipolar plate / coatings / corrosion resistance / interfacial contact resistance

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Jiaming Liu, Qian Hu, Sandrick Sabola, Yue Zhang, Biao Du, Xianzong Wang. Comparative review of corrosion-resistant coatings on metal bipolar plates of proton exchange membrane fuel cells. International Journal of Minerals, Metallurgy, and Materials, 2024, 31(12): 2627-2644 DOI:10.1007/s12613-024-2946-0

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References

[1]

Jiao K, Xuan J, Du Q, et al. . Designing the next generation of proton-exchange membrane fuel cells. Nature. 2021, 595(7867): 361

[2]

Liu GY, Hou FG, Peng SL, Wang XD, Fang BZ. Process and challenges of stainless steel based bipolar plates for proton exchange membrane fuel cells. Int. J. Miner. Metall. Mater.. 2022, 29(5): 1099

[3]

Wang Y, Ruiz Diaz DF, Chen KS, Wang Z, Adroher XC. Materials, technological status, and fundamentals of PEM fuel cells–A review. Mater. Today. 2020, 32: 178

[4]

Xu ZT, Qiu DK, Yi PY, Peng LF, Lai XM. Towards mass applications: A review on the challenges and developments in metallic bipolar plates for PEMFC. Prog. Nat. Sci. Mater. Int.. 2020, 30(6): 815

[5]

Włodarczyk R. Corrosion analysis of graphite sinter as bipolar plates in the low-temperature PEM fuel cell simulated environments. J. Solid State Electrochem.. 2022, 26(1): 39

[6]

Simaafrookhteh S, Khorshidian M, Momenifar M. Fabrication of multi-filler thermoset-based composite bipolar plates for PEMFCs applications: Molding defects and properties characterizations. Int. J. Hydrogen Energy. 2020, 45(27): 14119

[7]

X.B. Li, L.F. Peng, D. Zhang, P.Y. Yi, and X.M. Lai, The frequency of pulsed DC sputtering power introducing the graphitization and the durability improvement of amorphous carbon films for metallic bipolar plates in proton exchange membrane fuel cells, J. Power Sources, 466(2020), art. No. 228346.

[8]

Pitchiya AP, Le NT, Putnam ZA, Harrington M, Krishnan S. Microporous graphite composites of tailorable porosity, surface wettability, and water permeability for fuel cell bipolar plates. Ind. Eng. Chem. Res.. 2021, 60(28): 10203

[9]

Lee HE, Chung YS, Kim SS. Feasibility study on carbon-felt-reinforced thermoplastic composite materials for PEMFC bipolar plates. Compos. Struct.. 2017, 180: 378

[10]

X.Z. Wang, C.P. Ye, D.D. Shi, H.Q. Fan, and Q. Li, Potential polarization accelerated degradation of interfacial electrical conductivity for Au/TiN coated 316L SS bipolar plates used in polymer electrolyte membrane fuel cells, Corros. Sci., 189(2021), art. No. 109624.

[11]

L.X. Yang, R.J. Liu, Y. Wang, H.J. Liu, C.L. Zeng, and C. Fu, Growth of nanocrystalline β-Nb2N coating on 430 ferritic stainless steel bipolar plates of PEMFCs by disproportionation reaction of Nb(IV) ions in molten salt, Corros. Sci., 174(2020), art. No. 108862.

[12]

Xu ZT, Li ZP, Zhang R, Jiang TH, Peng LF. Fabrication of micro channels for titanium PEMFC bipolar plates by multistage forming process. Int. J. Hydrogen Energy. 2021, 46(19): 11092

[13]

Asri NF, Husaini T, Sulong AB, Majlan EH, Daud WRW. Coating of stainless steel and titanium bipolar plates for anticorrosion in PEMFC: A review. Int. J. Hydrogen Energy. 2017, 42(14): 9135

[14]

Zeng YW, He ZH, Hua QH, Xu QJ, Min YL. Polyacrylonitrile infused in a modified honeycomb aluminum alloy bipolar plate and its acid corrosion resistance. ACS Omega. 2020, 5(27): 16976

[15]

Sim Y, Kwak J, Kim SY, et al. . Formation of 3D graphene–Ni foam heterostructures with enhanced performance and durability for bipolar plates in a polymer electrolyte membrane fuel cell. J. Mater. Chem. A. 2018, 6(4): 1504

[16]

T. Wilberforce, O. Ijaodola, E. Ogungbemi, et al., Technical evaluation of proton exchange membrane (PEM) fuel cell performance–A review of the effects of bipolar plates coating, Renewable Sustainable Energy Rev., 113(2019), art. No. 109286.

[17]

F. Madadi, A. Rezaeian, H. Edris, and M. Zhiani, Improving performance in PEMFC by applying different coatings to metallic bipolar plates, Mater. Chem. Phys., 238(2019), art. No. 121911.

[18]

Jiang L, Syed JA, Lu HB, Meng XK. In-situ electrodeposition of conductive polypyrrole–graphene oxide composite coating for corrosion protection of 304SS bipolar plates. J. Alloys Compd.. 2019, 770: 35

[19]

S. Liu, T.J. Pan, R.F. Wang, Y. Yue, and J. Shen, Anti-corrosion and conductivity of the electrodeposited graphene/ polypyrrole composite coating for metallic bipolar plates, Prog. Org. Coat., 136(2019), art. No. 105237.

[20]

Z.H. Chen, G.H. Zhang, W.Z. Yang, et al., Superior conducting polypyrrole anti-corrosion coating containing functionalized carbon powders for 304 stainless steel bipolar plates in proton exchange membrane fuel cells, Chem. Eng. J., 393(2020), art. No. 124675.

[21]

Akula S, Kalaiselvi P, Sahu AK, Chellammal S. Electrodeposition of conductive PAMT/PPY bilayer composite coatings on 316L stainless steel plate for PEMFC application. Int. J. Hydrogen Energy. 2021, 46(34): 17909

[22]

Joseph S, McClure JC, Sebastian PJ, Moreira J, Valenzuela E. Polyaniline and polypyrrole coatings on aluminum for PEM fuel cell bipolar plates. J. Power Sources. 2008, 177(1): 161

[23]

Yang LJ, Yu HJ, Jiang LJ, Zhu L, Jian XY, Wang Z. Graphite–polypyrrole coated 316L stainless steel as bipolar plates for proton exchange membrane fuel cells. Int. J. Miner. Metall. Mater.. 2011, 18(1): 53

[24]

Y.L. Wang, S.H. Zhang, P. Wang, Z.X. Lu, S.B. Chen, and L.S. Wang, Synthesis and corrosion protection of Nb doped TiO2 nanopowders modified polyaniline coating on 316 stainless steel bipolar plates for proton-exchange membrane fuel cells, Prog. Org. Coat., 137(2019), art. No. 105327.

[25]

Wang YL, Zhang SH, Wang P, Chen SB, Lu ZX, Li WH. Electropolymerization and corrosion protection performance of the Nb: TiO2 nanofibers/polyaniline composite coating. J. Taiwan Inst. Chem. Eng.. 2019, 103: 190

[26]

Ates M, Topkaya E. Nanocomposite film formations of polyaniline via TiO2, Ag, and Zn, and their corrosion protection properties. Prog. Org. Coat.. 2015, 82: 33

[27]

Deyab MA. Corrosion protection of aluminum bipolar plates with polyaniline coating containing carbon nanotubes in acidic medium inside the polymer electrolyte membrane fuel cell. J. Power Sources. 2014, 268: 50

[28]

Nam ND, Kim JG, Lee YJ, Son YK. Effect of thermal treatment on the corrosion resistance of polyaniline in H2SO4–HF acid mixture solution. Corros. Sci.. 2009, 51(12): 3007

[29]

Lin KJ, Li XY, Dong HS, et al. . Surface modification of 316 stainless steel with platinum for the application of bipolar plates in high performance proton exchange membrane fuel cells. Int. J. Hydrogen Energy. 2017, 42(4): 2338

[30]

W.M. Yan, C.Y. Chen, and C.H. Liang, Comparison of performance degradation of high temperature PEM fuel cells with different bipolar plates, Energy, 186(2019), art. No. 115836.

[31]

F.Y. Yan, B.L. Jiang, Z.Y. Wang, et al., Thermal stabilization of nanocrystalline promoting conductive corrosion resistance of TiN–Ag films for metal bipolar plates, Vacuum, 195(2022), art. No. 110631.

[32]

Zhang D, Yi PY, Peng LF, Lai XM, Pu JB. Amorphous carbon films doped with silver and chromium to achieve ultra-low interfacial electrical resistance and long-term durability in the application of proton exchange membrane fuel cells. Carbon. 2019, 145: 333

[33]

Liu M, Xu HF, Fu J, Tian Y. Conductive and corrosion behaviors of silver-doped carbon-coated stainless steel as PEMFC bipolar plates. Int. J. Miner. Metall. Mater.. 2016, 23(7): 844

[34]

Fukutsuka T, Yamaguchi T, Miyano SI, Matsuo Y, Sugie Y, Ogumi Z. Carbon-coated stainless steel as PEFC bipolar plate material. J. Power Sources. 2007, 174(1): 199

[35]

Afshar A, Yari M, Larijani MM, Eshghabadi M. Effect of substrate temperature on structural properties and corrosion resistance of carbon thin films used as bipolar plates in polymer electrolyte membrane fuel cells. J. Alloys Compd.. 2010, 502(2): 451

[36]

H. Li, P. Guo, D. Zhang, et al., Interface-induced degradation of amorphous carbon films/stainless steel bipolar plates in proton exchange membrane fuel cells, J. Power Sources, 469(2020), art. No. 228269.

[37]

Wang WL, He SM, Lan CH. Protective graphite coating on metallic bipolar plates for PEMFC applications. Electrochim. Acta. 2012, 62: 30

[38]

L.X. Li, D.H. Ye, Y. Xiang, and W. Guo, Effect of deposition temperature on columnar structure of α-C nano-coatings of PEMFC metal bipolar plates, Int. J. Electrochem. Sci., 18(2023), No. 7, art. No. 100188.

[39]

Alaefour I, Shahgaldi S, Zhao J, Li XG. Synthesis and Ex-situ characterizations of diamond-like carbon coatings for metallic bipolar plates in PEM fuel cells. Int. J. Hydrogen Energy. 2021, 46(19): 11059

[40]

Yi PY, Zhang WX, Bi FF, Peng LF, Lai XM. Microstructure and properties of a-C films deposited under different argon flow rate on stainless steel bipolar plates for proton exchange membrane fuel cells. J. Power Sources. 2019, 410: 188

[41]

W. Li, L.T. Liu, Z.X. Li, Y.F. Wang, H.Z. Li, and J.J. Lei, Corrosion resistance and conductivity of amorphous carbon coated SS316L and TA2 bipolar plates in proton-exchange membrane fuel cells, Diamond Relat. Mater., 118(2021), art. No. 108503.

[42]

J. Jin, X.L. Kou, X. Tian, et al., Investigation of corrosion protection with conductive chromium–aluminum carbonitride coating on metallic bipolar plates, Vacuum, 213(2023), art. No. 112084.

[43]

Wang L, Tao YK, Zhang Z, et al. . Molybdenum carbide coated 316L stainless steel for bipolar plates of proton exchange membrane fuel cells. Int. J. Hydrogen Energy. 2019, 44(10): 4940

[44]

Zhao Y, Wei L, Yi PY, Peng LF. Influence of Cr–C film composition on electrical and corrosion properties of 316L stainless steel as bipolar plates for PEMFCs. Int. J. Hydrogen Energy. 2016, 41(2): 1142

[45]

Hou K, Yi PY, Li XB, Peng LF, Lai XM. The effect of Cr doped in amorphous carbon films on electrical conductivity: Characterization and mechanism. Int. J. Hydrogen Energy. 2021, 46(60): 30841

[46]

J.L. Lu, N. Abbas, J.N. Tang, J. Tang, and G.M. Zhu, Synthesis and characterization of conductive ceramic MAX-phase coatings for metal bipolar plates in simulated PEMFC environments, Corros. Sci., 158(2019), art. No. 108106.

[47]

Ma GS, Zhang D, Guo P, et al. . Phase orientation improved the corrosion resistance and conductivity of Cr2AlC coatings for metal bipolar plates. J. Mater. Sci. Technol.. 2022, 105: 36

[48]

Zhang HB, Jiang K, Qiu Y, et al. . Electrochemical properties of niobium and niobium compounds modified AISI430 stainless steel as bipolar plates for DFAFC. Surf. Eng.. 2019, 35(11): 1003

[49]

Taner T, Naqvi SAH, Ozkaymak M. Techno-economic analysis of a more efficient hydrogen generation system prototype: A case study of PEM electrolyzer with Cr–C coated SS304 bipolar plates. Fuel Cells. 2019, 19(1): 19

[50]

Bi J, Yang JM, Liu XX, et al. . Development and evaluation of nitride coated titanium bipolar plates for PEM fuel cells. Int. J. Hydrogen Energy. 2021, 46(1): 1144

[51]

T.J. Pan, Y.J. Dai, J. Jiang, J.H. Xiang, Q.Q. Yang, and Y.S. Li, Anti-corrosion performance of the conductive bilayer CrC/CrN coated 304SS bipolar plate in acidic environment, Corros. Sci., 206(2022), art. No. 110495.

[52]

Yang LX, Liu RJ, Wang Y, Liu HJ, Zeng CL, Fu C. Corrosion and interfacial contact resistance of nanocrystalline β-Nb2N coating on 430 FSS bipolar plates in the simulated PEMFC anode environment. Int. J. Hydrogen Energy. 2021, 46(63): 32206

[53]

Y. Jang, Y. Kim, W. Jeong, et al., Corrosion behavior of Ta and TiN double-layer-coated SUS316L for PEMFC bipolar plates using plasma-enhanced atomic layer deposition and magnetron sputtering, J. Alloys Compd., 977(2024), art. No. 173379.

[54]

W.J. Lee, E.Y. Yun, H.B.R. Lee, S.W. Hong, and S.H. Kwon, Ultrathin effective TiN protective films prepared by plasma-enhanced atomic layer deposition for high performance metallic bipolar plates of polymer electrolyte membrane fuel cells, Appl. Surf. Sci., 519(2020), art. No. 146215.

[55]

Mi BS, Chen Z, Wang Q, Li Y, Qin ZW, Wang HB. Properties of C-doped CrTiN films on the 316L stainless steel bipolar plate for PEMFC. Int. J. Hydrogen Energy. 2021, 46(64): 32645

[56]

Yang LH, Qin ZL, Pan HT, Yun H, Min YL, Xu QJ. Corrosion protection of 304 stainless steel bipolar plates of PEMFC by coating SnO2 film. Int. J. Electrochem. Sci.. 2017, 12(11): 10946

[57]

Wang YL, Zhang SH, Lu ZX, Wang LS, Li WH. Preparation and performances of electrically conductive Nb-doped TiO2 coatings for 316 stainless steel bipolar plates of proton-exchange membrane fuel cells. Corros. Sci.. 2018, 142: 249

[58]

Pillis MF, Oliveira MCL, Antunes RA. Surface chemistry and the corrosion behavior of magnetron sputtered niobium oxide films in sulfuric acid solution. Appl. Surf. Sci.. 2018, 462: 344

[59]

Wang XZ, Fan HQ, Muneshwar T, Cadien K, Luo JL. Balancing the corrosion resistance and through-plane electrical conductivity of Cr coating via oxygen plasma treatment. J. Mater. Sci. Technol.. 2021, 61: 75

[60]

Jin J, Hu ML, Zhao XH. Investigation of incorporating oxygen into TiN coating to resist high potential effects on PEMFC bipolar plates in vehicle applications. Int. J. Hydrogen Energy. 2020, 45(43): 23310

[61]

Wang XZ, Muneshwar TP, Fan HQ, Cadien K, Luo JL. Achieving ultrahigh corrosion resistance and conductive zirconium oxynitride coating on metal bipolar plates by plasma enhanced atomic layer deposition. J. Power Sources. 2018, 397: 32

[62]

Wang XZ, Luo H, Muneshwar T, Fan HQ, Cadien K, Luo JL. Zr2N2O coating-improved corrosion resistance for the anodic dissolution induced by cathodic transient potential. ACS Appl. Mater. Interfaces. 2018, 10(46): 40111

[63]

Y.Y. Hong, X.Z. Wang, K. Cadien, and J.L. Luo, Controlled oxygen incorporation in TiN coatings via heat treatment for applications in PEMFC metallic bipolar plates, J. Electrochem. Soc., 168(2021), No. 5, art. No. 051502.

[64]

Wang SL, Hou M, Zhao Q, et al. . Ti/(Ti, Cr)N/CrN multilayer coated 316L stainless steel by arc ion plating as bipolar plates for proton exchange membrane fuel cells. J. Energy Chem.. 2017, 26(1): 168

[65]

Pugal Mani S, Kalaiarasan M, Ravichandran K, Rajendran N, Meng Y. Corrosion resistant and conductive TiN/TiAlN multilayer coating on 316L SS: A promising metallic bipolar plate for proton exchange membrane fuel cell. J. Mater. Sci.. 2021, 56(17): 10575

[66]

Pugal Mani S, Agilan P, Kalaiarasan M, Ravichandran K, Rajendran N, Meng Y. Effect of multilayer CrN/CrAlN coating on the corrosion and contact resistance behavior of 316L SS bipolar plate for high temperature proton exchange membrane fuel cell. J. Mater. Sci. Technol.. 2022, 97: 134

[67]

Q. Jia, Z. Mu, X. Zhang, et al., Electronic conductive and corrosion mechanisms of dual nanostructure CuCr-doped hydrogenated carbon films for SS316L bipolar plates, Mater. Today Chem., 21(2021), art. No. 100521.

[68]

J. Jin, J.Z. Zhang, M.L. Hu, and X. Li, Investigation of high potential corrosion protection with titanium carbonitride coating on 316L stainless steel bipolar plates, Corros. Sci., 191(2021), art. No. 109757.

[69]

Peng S, Xu J, Li ZY, et al. . A reactive-sputter-deposited TiSiN nanocomposite coating for the protection of metallic bipolar plates in proton exchange membrane fuel cells. Ceram. Int.. 2020, 46(3): 2743

[70]

Liu AH, Deng JX, Cui HB, Chen YY, Zhao J. Friction and wear properties of TiN, TiAlN, AlTiN and CrAlN PVD nitride coatings. Int. J. Refract. Met. Hard Mater.. 2012, 31: 82

[71]

Dadfar M, Salehi M, Golozar MA, Trasatti S. Surface modification of 304 stainless steels to improve corrosion behavior and interfacial contact resistance of bipolar plates. Int. J. Hydrogen Energy. 2016, 41(46): 21375

[72]

Lee YH, Noh S, Lee JH, Chun SH, Cha SW, Chang I. Durable graphene-coated bipolar plates for polymer electrolyte fuel cells. Int. J. Hydrogen Energy. 2017, 42(44): 27350

[73]

Wu MG, Lu CD, Hong T, et al. . Chromium interlayer amorphous carbon film for 304 stainless steel bipolar plate of proton exchange membrane fuel cell. Surf. Coat. Technol.. 2016, 307: 374

[74]

Wang XZ, Zhang MM, Shi DD, et al. . Long-term polarization accelerated degradation of nano-thin C/Ti coated SS316L bipolar plates used in polymer electrolyte membrane fuel cells. Int. J. Hydrogen Energy. 2022, 47(14): 8974

[75]

Bi FF, Peng LF, Yi PY, Lai XM. Multilayered Zr–C/a-C film on stainless steel 316L as bipolar plates for proton exchange membrane fuel cells. J. Power Sources. 2016, 314: 58

[76]

Bi FF, Li XB, Yi PY, Hou K, Peng LF, Lai XM. Characteristics of amorphous carbon films to resist high potential impact in PEMFCs bipolar plates for automotive application. Int. J. Hydrogen Energy. 2017, 42(20): 14279

[77]

Yi PY, Zhang D, Peng LF, Lai XM. Impact of film thickness on defects and the graphitization of nanothin carbon coatings used for metallic bipolar plates in proton exchange membrane fuel cells. ACS Appl. Mater. Interfaces. 2018, 10(40): 34561

[78]

Zhang WX, Yi PY, Peng LF, Lai XM. Strategy of alternating bias voltage on corrosion resistance and interfacial conductivity enhancement of TiCx/a-C coatings on metallic bipolar plates in PEMFCs. Energy. 2018, 162: 933

[79]

X.Z. Wang, M.M. Zhang, Q. Hu, et al., Optimizing the interfacial potential distribution to mitigate high transient potential induced dissolution on C/Ti coated metal bipolar plates used in PEMFCs, Corros. Sci., 208(2022), art. No. 110686.

[80]

Yi PY, Peng LF, Zhou T, Huang JQ, Lai XM. Composition optimization of multilayered chromiumnitride–carbon film on 316L stainless steel as bipolar plates for proton exchange membrane fuel cells. J. Power Sources. 2013, 236: 47

[81]

W.Q. Yan, Y.F. Zhang, L. Chen, et al., Corrosion behavior and interfacial conductivity of amorphous hydrogenated carbon and titanium carbide composite (a-C:H/TiC) films prepared on titanium bipolar plates in PEMFCs, Diamond Relat. Mater., 120(2021), art. No. 108628.

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