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Modeling of high-efficient direct methanol fuel cells with order-structured catalyst layer

Author

Listed:
  • Jiang, Jinghui
  • Li, Yinshi
  • Liang, Jiarong
  • Yang, Weiwei
  • Li, Xianglin

Abstract

Direct methanol fuel cell is widely seen as the promising energy conversion technology with high energy efficiency, low emission and easy delivery of fuel. However, catalysts in traditional direct methanol fuel cell associating with disordered electrode are prone to agglomerate, lowering energy conversion efficiency. Herein, we focus on order-structured catalyst layer by presenting a two-dimensional, two-phase, steady-state model to shed light on the ordered direct methanol fuel cells. The model considers both radial and axial transports of oxygen along the carbon nanowire in the order-structured cathode catalyst layer. The radial diffusion model simulates the oxygen transfer from the gas pore to the triple-phase boundary of the cylindrical electrode covered by a water film. The model also accounts for the effects of electrochemical surface areas of catalysts and the volume fraction of three phases. The whole-cell model formed by integrating those in different regions is solved numerically and validated against the experimental data in the literature. It is demonstrated that the direct methanol fuel cell with ordered electrode yields a better cell performance, 46.6% and 62.5% higher than that with agglomerate electrode in terms of peak power density and maximum current density, respectively, implying the improved energy efficiency. The better performance of the ordered electrode is attributed to the lowered activation, ohmic and concentration losses. Overall effect of the structural parameters indicates that the peak power density of the ordered direct methanol fuel cell can reach 93.86 mW cm−2 when carbon nanowire radius, carbon loading and Pt loading are set at 45 nm, 2.0 mg cm−2 and 1.6 mg cm−2, respectively. This work is instructive to develop high-performance fuel cell electrodes with high catalyst utilization as well as electrodes of other electrochemical energy conversion and storage devices.

Suggested Citation

  • Jiang, Jinghui & Li, Yinshi & Liang, Jiarong & Yang, Weiwei & Li, Xianglin, 2019. "Modeling of high-efficient direct methanol fuel cells with order-structured catalyst layer," Applied Energy, Elsevier, vol. 252(C), pages 1-1.
  • Handle: RePEc:eee:appene:v:252:y:2019:i:c:60
    DOI: 10.1016/j.apenergy.2019.113431
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    References listed on IDEAS

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    1. Achmad, F. & Kamarudin, S.K. & Daud, W.R.W. & Majlan, E.H., 2011. "Passive direct methanol fuel cells for portable electronic devices," Applied Energy, Elsevier, vol. 88(5), pages 1681-1689, May.
    2. Wang, Zhigang & Zhang, Xuelin & Nie, Li & Zhang, Yufeng & Liu, Xiaowei, 2014. "Elimination of water flooding of cathode current collector of micro passive direct methanol fuel cell by superhydrophilic surface treatment," Applied Energy, Elsevier, vol. 126(C), pages 107-112.
    3. Wu, Qixing & Li, Haiyang & Yuan, Wenxiang & Luo, Zhongkuan & Wang, Fang & Sun, Hongyuan & Zhao, Xuxin & Fu, Huide, 2015. "Performance evaluation of an air-breathing high-temperature proton exchange membrane fuel cell," Applied Energy, Elsevier, vol. 160(C), pages 146-152.
    4. Jung, Guo-Bin & Tzeng, Wei-Jen & Jao, Ting-Chu & Liu, Yu-Hsu & Yeh, Chia-Chen, 2013. "Investigation of porous carbon and carbon nanotube layer for proton exchange membrane fuel cells," Applied Energy, Elsevier, vol. 101(C), pages 457-464.
    5. Wang, Yang & Luo, Hui & Li, Guang & Jiang, Jianming, 2016. "Highly active platinum electrocatalyst towards oxygen reduction reaction in renewable energy generations of proton exchange membrane fuel cells," Applied Energy, Elsevier, vol. 173(C), pages 59-66.
    6. Xia, Zhangxun & Sun, Ruili & Jing, Fenning & Wang, Suli & Sun, Hai & Sun, Gongquan, 2018. "Modeling and optimization of Scaffold-like macroporous electrodes for highly efficient direct methanol fuel cells," Applied Energy, Elsevier, vol. 221(C), pages 239-248.
    7. Seo, Sang Hern & Lee, Chang Sik, 2010. "A study on the overall efficiency of direct methanol fuel cell by methanol crossover current," Applied Energy, Elsevier, vol. 87(8), pages 2597-2604, August.
    8. Kwok, Y.H. & Wang, Y.F. & Tsang, Alpha C.H. & Leung, Dennis Y.C., 2018. "Graphene-carbon nanotube composite aerogel with Ru@Pt nanoparticle as a porous electrode for direct methanol microfluidic fuel cell," Applied Energy, Elsevier, vol. 217(C), pages 258-265.
    9. Li, Jing & Xu, Guoxiao & Luo, Xingying & Xiong, Jie & Liu, Zhao & Cai, Weiwei, 2018. "Effect of nano-size of functionalized silica on overall performance of swelling-filling modified Nafion membrane for direct methanol fuel cell application," Applied Energy, Elsevier, vol. 213(C), pages 408-414.
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    Cited by:

    1. Zhengang Zhao & Dongjie Li & Xiaoping Xu & Dacheng Zhang, 2023. "An Adaptive Joint Operating Parameters Optimization Approach for Active Direct Methanol Fuel Cells," Energies, MDPI, vol. 16(5), pages 1-14, February.
    2. Fang, Yuan & Zhang, Tingting & Wang, Yonghui & Chen, Yuanzhen & Liu, Yan & Wu, Wenling & Zhu, Jianfeng, 2020. "The highly efficient cathode of framework structural Fe2O3/Mn2O3 in passive direct methanol fuel cells," Applied Energy, Elsevier, vol. 259(C).
    3. Pan, Zhefei & Bi, Yanding & An, Liang, 2020. "A cost-effective and chemically stable electrode binder for alkaline-acid direct ethylene glycol fuel cells," Applied Energy, Elsevier, vol. 258(C).
    4. Qinwen Yang & Gang Xiao & Tao Liu & Bin Gao & Shujun Chen, 2022. "Efficient Prediction of Fuel Cell Performance Using Global Modeling Method," Energies, MDPI, vol. 15(22), pages 1-14, November.

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