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通过溶液沉淀法制备用于改善锂离子固体电解质枝晶形成稳定性的氯化磷硫锂聚合物复合材料。

Lithium Phosphorus Sulfide Chloride-Polymer Composite via the Solution-Precipitation Process for Improving Stability toward Dendrite Formation of Li-Ion Solid Electrolyte.

机构信息

Division of Nuclear Medicine, Department of Radiology, Faculty of Medicine, Chulalongkorn University, Bangkok 10330, Thailand.

Energy Storage and Distributed Resources Division, Energy Technologies Area, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.

出版信息

ACS Appl Mater Interfaces. 2023 Mar 8;15(9):11723-11730. doi: 10.1021/acsami.2c21302. Epub 2023 Feb 24.

Abstract

Improving the mechanical strength of ceramic solid electrolytes such as lithium phosphorus sulfide families for pressure-driven dendrite blocking as well as reducing the electronic conductivity to prevent a dendrite formation inside the electrolytes are very important to extend the lifespan of all-solid-state lithium-metal batteries. Here, we propose a low-temperature solution-precipitation process to prepare polymer-solid electrolyte composites for a highly uniform polymer distribution in the electrolyte to enhance their mechanical strength and reduce their electronic conduction. The composites with up to 12 wt % of polymer are prepared, and the composites exhibit high ionic conductivities of up to 0.3 mS/cm. Furthermore, the electrochemical stability of the electrolyte composites on Li striping/plating cycles is investigated. We confirm that the proposed solution-precipitation process makes the composite much more stable than the bare solid electrolyte and causes them to outperform similar composites from the other existing preparation methods, such as mechanical mixing and solution dispersion.

摘要

提高陶瓷固体电解质(如锂磷硫化物家族)的机械强度,以阻止压力驱动的枝晶生长,并降低电子电导率以防止电解质内部的枝晶形成,对于延长全固态锂电池的寿命非常重要。在这里,我们提出了一种低温溶液沉淀法来制备聚合物-固体电解质复合材料,以在电解质中实现高度均匀的聚合物分布,从而提高其机械强度并降低电子传导率。制备了高达 12wt%聚合物的复合材料,其复合材料表现出高达 0.3 mS/cm 的高离子电导率。此外,还研究了电解质复合材料在 Li 剥离/电镀循环中的电化学稳定性。我们证实,所提出的溶液沉淀工艺使复合材料比纯固体电解质更加稳定,并使它们比其他现有制备方法(如机械混合和溶液分散)的类似复合材料表现更优。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6a2/9999344/dcaeafbb343e/am2c21302_0002.jpg

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