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Printable, high-performance solid-state electrolyte films.


ABSTRACT: Current ceramic solid-state electrolyte (SSE) films have low ionic conductivities (10-8 to 10-5 S/cm ), attributed to the amorphous structure or volatile Li loss. Herein, we report a solution-based printing process followed by rapid (~3 s) high-temperature (~1500°C) reactive sintering for the fabrication of high-performance ceramic SSE films. The SSEs exhibit a dense, uniform structure and a superior ionic conductivity of up to 1 mS/cm. Furthermore, the fabrication time from precursor to final product is typically ~5 min, 10 to 100 times faster than conventional SSE syntheses. This printing and rapid sintering process also allows the layer-by-layer fabrication of multilayer structures without cross-contamination. As a proof of concept, we demonstrate a printed solid-state battery with conformal interfaces and excellent cycling stability. Our technique can be readily extended to other thin-film SSEs, which open previously unexplores opportunities in developing safe, high-performance solid-state batteries and other thin-film devices.

SUBMITTER: Ping W 

PROVIDER: S-EPMC7673806 | biostudies-literature | 2020 Nov

REPOSITORIES: biostudies-literature

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Printable, high-performance solid-state electrolyte films.

Ping Weiwei W   Wang Chengwei C   Wang Ruiliu R   Dong Qi Q   Lin Zhiwei Z   Brozena Alexandra H AH   Dai Jiaqi J   Luo Jian J   Hu Liangbing L  

Science advances 20201118 47


Current ceramic solid-state electrolyte (SSE) films have low ionic conductivities (10<sup>-8</sup> to 10<sup>-5</sup> S/cm ), attributed to the amorphous structure or volatile Li loss. Herein, we report a solution-based printing process followed by rapid (~3 s) high-temperature (~1500°C) reactive sintering for the fabrication of high-performance ceramic SSE films. The SSEs exhibit a dense, uniform structure and a superior ionic conductivity of up to 1 mS/cm. Furthermore, the fabrication time fro  ...[more]

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