Electrospun carbon nanofiber catalyst layers for polymer electrolyte membrane fuel cells: fabrication and optimization

被引:18
|
作者
Chan, Sophia [1 ]
Jankovic, Jasna [2 ,3 ]
Susac, Darija [3 ]
Saha, Madhu Sudan [3 ]
Tam, Mickey [3 ]
Yang, Heejae [1 ]
Ko, Frank [1 ]
机构
[1] Univ British Columbia, Dept Mat Engn, Vancouver, BC V6T 1Z4, Canada
[2] Univ Connecticut, Dept Mat Sci & Engn, Storrs, CT 06269 USA
[3] Automot Fuel Cell Cooperat Corp, 9000 Glenlyon Pkwy, Burnaby, BC V5J 5J8, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
RESPONSE-SURFACE METHODOLOGY; SUPPORT MATERIALS; PERFORMANCE; MORPHOLOGY; ELECTROCATALYSTS; DEGRADATION; DURABILITY; FIBER; CONDUCTIVITY; INSTABILITY;
D O I
10.1007/s10853-018-2411-4
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Current polymer electrolyte membrane fuel cell catalyst support in a form of carbon black is linked with poor Pt utilization, non-optimized triple-phase boundary, mass transport losses, non-uniform microstructure, and durability issues. Little improvement has been made in creating a novel catalyst support microstructure and design to address the challenges associated with the use of carbon blacks. Of particular importance is the ability to control the microstructure of the catalyst layer. There is a lack of fundamental understanding of the relationship between the well-controlled catalyst layer microstructure and fuel cell performance. As catalyst layers require a structure that offers large porosity and surface area, it is envisioned that electrospun nanofibers are an excellent choice, providing a number of structural parameters that could be controlled, i.e., porosity, fiber diameter, fiber alignment, layer thickness. In this work, the fabrication parameters of electrospun carbon nanofibers (CNF) are optimized by factorial design to target key membrane electrode assembly design criterion. Validation of the structural and material properties concludes that optimized CNF surpassed design targets, achieving similar to 80% porosity, similar to 30 S cm(-1) in-plane electrical conductivity, and similar to 330 nm fiber diameter. The optimization reveals that CNF properties were successfully tailored and appear feasible as novel catalyst support. The results from the detailed and systematic design of experiments provide a basis for correlating the material and structural properties to key fuel cell performance factors.
引用
收藏
页码:11633 / 11647
页数:15
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