LaMnO3-Type Perovskite Nanofibers as Effective Catalysts for On-Cell CH4 Reforming via Solid Oxide Fuel Cells

Author:

Jia Yangbo1,Wei Tong1,Shao Zhufeng2,Song Yunpeng3,Huang Xue4,Huang Beila4,Cao Chen1,Zhi Yufan1

Affiliation:

1. School of Materials Science & Engineering, Zhejiang SCI-TECH University, Hangzhou 310018, China

2. China Industrial Energy Conservation and Cleaner Production Association, Beijing 100034, China

3. Industry Development Center of Zhejiang Province, Hangzhou 310006, China

4. Zhejiang Institute of Industry and Information Technology, Hangzhou 310006, China

Abstract

CH4 has become the most attractive fuel for solid oxide fuel cells due to its wide availability, narrow explosion limit range, low price, and easy storage. Thus, we present the concept of on-cell reforming via SOFC power generation, in which CH4 and CO2 can be converted into H2 and the formed H2 is electrochemically oxidized on a Ni-BZCYYb anode. We modified the porosity and specific surface area of a perovskite reforming catalyst via an optimized electrostatic spinning method, and the prepared LCMN nanofibers, which displayed an ideal LaMnO3-type perovskite structure with a high specific surface area, were imposed on a conventional Ni-BZCYYb anode for on-cell CH4 reforming. Compared to LCMN nanoparticles used as on-cell reforming catalysts, the NF-SOFC showed lower ohmic and polarization resistances, indicating that the porous nanofibers could reduce the resistances of fuel gas transport and charge transport in the anode. Accordingly, the NF-SOFC displayed a maximum power density (MPD) of 781 mW cm−2 and a stable discharge voltage of around 0.62 V for 72 h without coking in the Ni-BZCYYb anode. The present LCMN NF materials and on-cell reforming system demonstrated stability and potential for highly efficient power generation with hydrocarbon fuels.

Funder

National Natural Science Foundation of China

Baima Lake Laboratory Joint Funds of the Zhejiang Provincial Natural Science Foundation of China

Publisher

MDPI AG

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