Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7728155 | Journal of Power Sources | 2016 | 15 Pages |
Abstract
The approach probes the reticulated pathways to each TPB using an analytical electrochemical fin model applied to a 3-D discrete representation of the heterogeneous structure provided by skeleton-based partitioning. The method is tested on artificial and real structures imaged by 3-D x-ray and electron microscopy. The accessible TPB is not uniform and the pattern varies depending upon the structure. Connected TPBs can be even passivated. The sensitivity to manipulations of the local 3-D geometry and topology that standard measurements cannot capture is demonstrated. The clear presence of preferential pathways showcases a non-uniform utilization of the 3-D structure that potentially affects the performance and the resilience to alterations due to degradation phenomena. The concepts presented also apply to electrochemical energy storage and conversion devices such as other types of fuel cells, electrolyzers, batteries and capacitors.
Related Topics
Physical Sciences and Engineering
Chemistry
Electrochemistry
Authors
A. Nakajo, A.P. Cocco, M.B. DeGostin, A.A. Peracchio, B.N. Cassenti, M. Cantoni, J. Van herle, W.K.S. Chiu,