Cathode catalyst layer with nanofiber microstructure for direct methanol fuel cells

  • Liu, Guicheng
  • Ye, Feng
  • Xiong, Lingyun
  • Lee, Jeongwoo
  • Wang, Lei
  • ... Yang, Woochul
  • 외 3명
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초록

Due to eco-friendly production and running processes, direct methanol fuel cell has been considered as a clean and green energy generation technology. However, the dissatisfactory discharge performance of fuel cell, mainly caused by low-efficient catalyst layers, has limited its commercialization. To improve the electrochemical active surface area, herein, the novel cathode catalyst layer with nanofiber microstructure has been prepared by adding water additive into the catalyst slurry, during the heat-spray process, for enhancing electrochemical performance of direct methanol fuel cells. In the catalyst slurry, owing to its high molecular polarity, the water phase collects polar parts of Nafion molecules, i.e. sulfonic acid group, together to form the polar region. Simultaneously, the nonpolar fluorocarbon chain spreads into an isopropanol phase to form the low-polar region. The distinction between polar and non-polar regions provides a structural basis for orderly mass transfer inside the catalyst layer. Finally, the novel catalyst layer exhibits a 34.7% increase in electrochemical active surface area and signally enhanced mass transport properties, leading to a 41.5% improvement in the power density of the fuel cell. This design to concurrently enhance electroactive surface area and build order mass transfer provides a new strategy for developing high-performance catalyst layers.

키워드

Direct methanol fuel cellCatalyst layerNanofiber microstructureElectrochemical active surface areaMass transportEXCHANGE MEMBRANESPOWER-GENERATIONHIGH-PERFORMANCEANODEPARAMETERS
제목
Cathode catalyst layer with nanofiber microstructure for direct methanol fuel cells
저자
Liu, GuichengYe, FengXiong, LingyunLee, JeongwooWang, LeiLi, XinyangLi, JingweiLee, Joong KeeYang, Woochul
DOI
10.1016/j.enconman.2020.113013
발행일
2020-08
유형
Article
저널명
Energy Conversion and Management
218