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All-sputtered proton-conductive fuel cells based on flashlight-sintered thin-film Y:BaZrO3-δ electrolyteAll-sputtered proton-conductive fuel cells based on flashlight-sintered thin-film Y:BaZrO3–δ electrolyte

Other Titles
All-sputtered proton-conductive fuel cells based on flashlight-sintered thin-film Y:BaZrO3–δ electrolyte
Authors
Baek, JiwonYoun, JunseoOh, Hyoun-MyoungLee, JonghyukLee, HaesuMinh, Nguyen Q.Kim, Young-BeomLee, Yoon HoPark, Taehyun
Issue Date
Jun-2025
Publisher
ELSEVIER
Keywords
Proton-conductive fuel cell; BZY; Magnetron sputtering; Flashlight sintering; Ba evaporation
Citation
CHINESE JOURNAL OF STRUCTURAL CHEMISTRY, v.44, no.6, pp 1 - 8
Pages
8
Indexed
SCIE
Journal Title
CHINESE JOURNAL OF STRUCTURAL CHEMISTRY
Volume
44
Number
6
Start Page
1
End Page
8
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/219631
DOI
10.1016/j.cjsc.2025.100598
ISSN
0254-5861
2949-768X
Abstract
In this work, we present an innovative method for fabricating high-performance proton-conductive fuel cells (PCFCs) by combining magnetron sputtering and flashlight sintering (FLS) techniques. BaZr0.8Y0.2O3–δ (BZY20) electrolyte thin-films are successfully prepared by improving the crystallinity while maintaining the stoichiometry. All components of PCFC, Ni-YSZ anode, BZY20 electrolyte and Pt-GDC cathode are fabricated by sequentially sputtering them onto an AAO substrate. Electrolytic sintering is performed at 550 and 650 V conditions using FLS, effectively solving the Ba evaporation problem encountered in conventional thermal sintering methods. XRD analysis confirms that the perovskite structure is retained, and crystallinity is improved in the FLS samples. Furthermore, FE-SEM and EDS analyses confirm the uniform elemental distribution and consistent thickness of the FLS-treated electrolyte. An optimized PCFC unit cell with FLS-treated electrolyte exhibits a peak power density of 200.0 mW cm−2 at 500 °C and an ohmic resistance of 376.0 mΩ cm−2. These results suggest that the combination of magnetron sputtering and FLS techniques is a promising approach for fabricating high-performance thin-film PCFCs.
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