Design and Synthesis of Cubic K<sub>3-2</sub> <sub>x</sub> Ba<sub>x</sub> SbSe<sub>4</sub> Solid Electrolytes for K-O<sub>2</sub> Batteries.
basic_science · Level V
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- Record sourced from PubMed, PMID 37694543.
- Also identified by DOI 10.1002/adma.202306809.
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Abstract
Developing K-ion conducting solid-state electrolytes (SSEs) plays a critical role in the safe implementation of potassium batteries. In this work, a chalcogenide-based potassium ion SSE is reported, K<sub>3</sub> SbSe<sub>4</sub> , which adopts a trigonal structure at room temperature. Single-crystal structural analysis reveals a trigonal-to-cubic phase transition at the low temperature of 50 °C, which is the lowest among similar compounds and thus provides easy access to the cubic phase. The substitution of barium for potassium in K<sub>3</sub> SbSe<sub>4</sub> leads to the creation of potassium vacancies, expansion of lattice parameters, and a transformation from a trigonal phase to a cubic phase. As a result, the maximum conductivity of K<sub>3-2</sub> <sub>x</sub> Ba<sub>x</sub> SbSe<sub>4</sub> reaches around 0.1 mS cm<sup>-1</sup> at 40 °C for K<sub>2.2</sub> Ba<sub>0.4</sub> SbSe<sub>4</sub> , which is over two orders of magnitude higher than that of undoped K<sub>3</sub> SbSe<sub>4</sub> . This novel SSE is successfully employed in a K-O<sub>2</sub> battery operating at room temperature where a polymer-laminated K<sub>2.2</sub> Ba<sub>0.4</sub> SbSe<sub>4</sub> pellet serves as a separator between the oxygen cathode and the potassium metal anode. Effective protection of the K metal anode against corrosion caused by O<sub>2</sub> is demonstrated.