Imaging dendrite growth in solid-state sodium batteries using fluorescence tomography technology

Dendrite growth in solid-state sodium batteries (SSBs) is one of the most concerned issues that critically affect the battery efficiency and cycling performance. Here, by designing a fluorescent Eu -doped Na Zr Si PO solid electrolyte (SE) to facilitate three-dimensional (3D) optical imaging on a co...

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Veröffentlicht in:Science advances 2024-11, Vol.10 (47), p.eadr0676
Hauptverfasser: Yang, Shuaishuai, Li, Na, Zhao, Enyue, Wang, Chengzhi, He, Jingxin, Xiao, Xiong, Fang, Debao, Ni, Qing, Han, Xile, Xue, Xiaobin, Chen, Lai, Li, Ning, Li, Jingbo, Guo, Tuan, Su, Yuefeng, Jin, Haibo
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Sprache:eng
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Zusammenfassung:Dendrite growth in solid-state sodium batteries (SSBs) is one of the most concerned issues that critically affect the battery efficiency and cycling performance. Here, by designing a fluorescent Eu -doped Na Zr Si PO solid electrolyte (SE) to facilitate three-dimensional (3D) optical imaging on a confocal laser scanning microscopy, a fluorescence tomography (FT) method is developed for observing the sodium dendrite growth during charge/discharge cycles of the SSBs in a 3D view. It is quantitatively revealed that small-size sodium islands appear after several cycles, and with the cycles increasing, large-size dendrites in tens of micrometers gradually form until a critical sodium dendrite volume arrives where a short circuit or severe performance deterioration occurs. Furthermore, by regulating the Eu doping ratio, a record-high sodium plating/stripping cycling stability for more than 1 year (487.5 days) is achieved at 25°C. This work demonstrates an FT method observing sodium dendrite growth in SSBs and will promote the functional design of high-performance SEs.
ISSN:2375-2548
2375-2548
DOI:10.1126/sciadv.adr0676