S. Tao, J. Irvine
Hasil untuk "Fuel"
Menampilkan 20 dari ~1730765 hasil · dari DOAJ, Semantic Scholar, CrossRef
A. Hansen, Qin Zhang, P. Lyne
G. Gil, I. Chang, Byung-Hong Kim et al.
M. Momirlan, T. Veziroǧlu
G. Hoogers
Chunshan Song
J. Zaldivar, J. Nielsen, L. Olsson
H. Anderson
Yunhui Huang, R. I. Dass, Zhengliang Xing et al.
T. Bridgeman, Jenny M. Jones, I. Shield et al.
R. Mark Ormerod
R. Mann, J. C. Amphlett, M. Hooper et al.
J. Cracknell, K. Vincent, F. Armstrong
J. Fergus
Xianguo Li, I. Sabir
Yiyong Xiao, Qiuhong Zhao, I. Kaku et al.
Richard Moore
M. Kamarudin, S. Kamarudin, M. S. Masdar et al.
J. Hills
Xiaohui Yan, Shiqing Liu, Yongjian Su et al.
Free radicals are a class of reactive substances produced during the operation of proton exchange membrane fuel cells (PEMFCs), which have a great impact on the durability of PEMFCs. Previous research on the fuel cell degradation mechanism mainly focused on the degradation of the membrane electrode assembly (MEA) in high Pt loading PEMFCs, especially the chemical degradation of proton exchange membrane (PEM). However, there are significant differences in the characteristics and performance of PEMFCs with low and high Pt loading especially under the high current density, which is mainly due to the oxygen transport process in cathode catalyst layers (CCLs). Currently, few relevant research has explored the impact of chemical degradation on oxygen transport in the cathode of low-Pt PEMFCs. Therefore, this work investigates the effects of free radical attack on the structure of ionomer films, the local oxygen transport process and the evolution of the ionomer coated Pt/C structure in CCLs through physicochemical characterizations, electrochemical measurements and molecular dynamic simulations. Our research found that free radical attacks decreased the electrochemical active area of CCLs, but it also temporarily improved the cell performance at high current densities. Furthermore, molecular dynamics simulations demonstrated that the ionomer exhibited higher oxygen self-diffusion and a more relaxed structure after degradation.
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