Evaluating the performances of surface-modified titanium bipolar plates using in situ nitriding by plasma-enhanced chemical vapor deposition

被引:0
作者
Feng L.-L. [1 ]
Hou Y.-X. [1 ,2 ]
Tang S.-Y. [1 ]
Li S. [2 ]
Zheng J. [2 ]
Li X.-G. [2 ]
机构
[1] School of Chemical and Environmental Engineering, China University of Mining and Technology, Beijing
[2] Beijing National Laboratory of Molecular Sciences, State Key Laboratory of Rare Earth Materials Chemistry and Applications, College of Chemistry and Molecular Engineering, Peking University, Beijing
来源
Gongcheng Kexue Xuebao/Chinese Journal of Engineering | 2023年 / 45卷 / 04期
关键词
in situ nitriding; plasma-enhanced chemical vapor deposition; surface modification; titanium bipolar plates; titanium nitride coatings;
D O I
10.13374/j.issn2095-9389.2022.05.25.002
中图分类号
学科分类号
摘要
In this study, the surface modification of titanium plates was performed using in situ nitriding via plasma-enhanced chemical vapor deposition to improve the conductivity and corrosion resistance of the plates. A series of titanium nitride (TiN) coatings were synthesized at different nitriding temperatures and durations. The influence of nitriding temperatures and durations on the surface morphology, hydrophobicity, interfacial conductivity, and corrosion resistance of the as-prepared coatings was investigated. The results indicated that faster growth and larger particle size of TiN are observed at higher temperatures. However, lower temperatures are unfavorable for surface reactions; thus, the coating cannot entirely cover the titanium substrate. Moreover, a shorter nitriding time results in irregular nanogrowth nuclei on the surface, leading to an uneven coating and bare titanium substrate. Conversely, longer nitriding time encourages the continuous accumulation of TiN nanoparticles and forms a uniform coating of the titanium substrate but decreases the flatness because of the stacking of the coatings due to the long nitriding time (120 min). The TiN coating prepared by nitriding at 650 °C for 90 min (TiN-650-90) is relatively compact and smooth with the composition of TiN0.26 and has an increased water contact angle of 105.4°. The change from hydrophilicity to hydrophobicity in TiN is beneficial to fuel cell water resistance. At a loading pressure of 1.5 MPa, the contact resistances of the coatings prepared at a nitriding time of 60 min can satisfy the U.S. Department of Energy requirement of less than 10 mΩ·cm2. Despite a contact resistance of 13.2 mΩ·cm2 for the TiN-650-90 coating, the contact resistance decreases with increasing loading pressure and is stable at 6.5 mΩ·cm2 under a loading pressure of 2.75 MPa. The corrosion current density of the TiN-650-90 coating is 0.56 μA·cm−2, and the corrosion potential positively shifts from −0.37 to −0.05 V at room temperature. The corrosion current density tested in the simulated operating environment of fuel cells is higher than that at room temperature but much lower than that of titanium (4.2 μA·cm−2). Furthermore, the current density is stable at 0.67 μA·cm−2 and at a −0.1 V constant potential, indicating superior corrosion resistance and stability than titanium. The titanium bipolar plates modified by this method exhibit the advantages of relatively low deposition temperature, quick deposition speed, and good hydrophobicity, conductivity, and corrosion resistance. This work can pave the way for efficient surface modification of metal bipolar plates. © 2023 Science Press. All rights reserved.
引用
收藏
页码:602 / 610
页数:8
相关论文
共 37 条
  • [1] Ren P, Pei P C, Li Y H, Et al., Degradation mechanisms of proton exchange membrane fuel cell under typical automotive operating conditions, Prog Energy Combust Sci, 80, (2020)
  • [2] Brightman E, Hinds G, O'Malley R., In situ measurement of active catalyst surface area in fuel cell stacks, J Power Sources, 242, (2013)
  • [3] Meyer Q, Zeng Y C, Zhao C., In situ and operando characterization of proton exchange membrane fuel cells, Adv Mater, 31, 40, (2019)
  • [4] Song Y X, Zhang C Z, Ling C Y, Et al., Review on current research of materials, fabrication and application for bipolar plate in proton exchange membrane fuel cell, Int J Hydrog Energy, 45, 54, (2020)
  • [5] Wang W L, He S M, Lan C H., Protective graphite coating on metallic bipolar plates for PEMFC applications, Electrochimica Acta, 62, (2012)
  • [6] Shimpalee S, Lilavivat V, McCrabb H, Et al., Investigation of bipolar plate materials for proton exchange membrane fuel cells, Int J Hydrog Energy, 41, 31, (2016)
  • [7] Qiu D K, Yi P Y, Peng L F, Et al., Study on shape error effect of metallic bipolar plate on the GDL contact pressure distribution in proton exchange membrane fuel cell, Int J Hydrog Energy, 38, 16, (2013)
  • [8] Yi S J, Chen J H, Li H Y, Et al., Effect of graphite oxide on graphitization of furan resin carbon, Carbon, 48, 3, (2010)
  • [9] Feng L L, Chen Y, Li J G, Et al., Research progress in carbon-based composite molded bipolar plates, Chin J Eng, 43, 5, (2021)
  • [10] Antunes R A, de Oliveira M C L, Ett G, Et al., Carbon materials in composite bipolar plates for polymer electrolyte membrane fuel cells: A review of the main challenges to improve electrical performance, J Power Sources, 196, 6, (2011)