Slurry Synthesis and Thin-Film Fabrication Toward Production of Li<sub>2</sub>O-B<sub>2</sub>O<sub>3</sub>-Al<sub>2</sub>O<sub>3</sub>-B ased Multilayer Oxide Solid-State Batteries for Internet of Things Applicationsopen access
- Authors
- Park, Jihyun; Choi, Jongmin; Seo, Jihye; Nam, Wolil; Lee, Soobeom; Cho, Seungchan; Park, Kyungchul; An, Geonhyoung; Park, Beomkyeong; Choi, Moonhee
- Issue Date
- Jan-2025
- Publisher
- Multidisciplinary Digital Publishing Institute (MDPI)
- Keywords
- Internet of Things; microbatteries; microelectronics; oxide-based all-solid-state battery; oxide solid electrolyte
- Citation
- Micromachines, v.16, no.1
- Indexed
- SCIE
SCOPUS
- Journal Title
- Micromachines
- Volume
- 16
- Number
- 1
- URI
- https://scholarworks.gnu.ac.kr/handle/sw.gnu/75918
- DOI
- 10.3390/mi16010039
- ISSN
- 2072-666X
2072-666X
- Abstract
- Developing thin-film sheets made of oxide-based solid electrolytes is essential for fabricating surface-mounted ultracompact multilayer oxide solid-state batteries. To this end, solid-electrolyte slurry must be optimized for excellent dispersibility. Although oxide-based solid electrolytes for multilayer structures require sintering, high processing temperatures cause problems such as Li-ion volatilization and reactions with graphite anodes. Thus, low-temperature sinterable oxide-based solid-electrolyte materials should be devised. We successfully developed the conditions for producing thin films from 21 mu m thick solid-electrolyte sheets of Li2O-B2O3-Al2O3, one of the most promising candidates for multilayer solid-state batteries. A comprehensive analysis of the fabricated thin films included X-ray diffraction (XRD) to confirm their amorphous structure, scanning electron microscopy (SEM) for particle morphology, and contact angle measurements to verify surface hydrophilicity. Evaluation of a 32-layer bulk sample of solid-electrolyte sheets revealed an ionic conductivity of 2.33 x 10-7 S/cm and charge transfer resistance of 100.1 k Omega at a sintering temperature of 430 degrees C. Based on these results, cathode and anode active materials will be applied to develop high-energy-density multilayer ceramic batteries with hundreds of layers in future work.
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Collections - 공과대학 > ETC > Journal Articles
- 학과간협동과정 > 에너지시스템공학과 > Journal Articles

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