材料科学
陶瓷
电化学
电解质
微观结构
快离子导体
化学工程
锂(药物)
离子电导率
纳米颗粒
锆
电池(电)
电导率
纳米技术
粒子(生态学)
氧化物
无机化学
粒径
立方氧化锆
锂电池
锂离子电池
导电体
作者
Edward Matios,Yuan Nie,Andrii Murdza,Jason Liu,Jianmin Luo,J. Zhang,W. Li
标识
DOI:10.1002/aenm.202505181
摘要
ABSTRACT Conventional batch style sol–gel synthesis of ceramic solid‐state electrolyte (SSE) tends to suffer from irreproducibility in particle shape, size, and overall quality from batch to batch. The physical and electrochemical properties of ceramic SSE is highly dependent on its microstructure, which is correlated to the synthesis conditions. Previous synthesis methods primarily relied on extrinsic modifications, such as additive or surface coating, rather than intrinsically improving the electrochemical properties of ceramic SSEs. This inspired us to develop a synthesis method based on microfluidic (MF) engineering to enable a superior ceramic SSE with fundamentally improved solid‐state battery performance by directly optimizing the microstructure of ceramic SSEs. Using MF‐enabled sodium‐ion superionic conductor (NASICON) as an example, the ionic conductivity increased from 0.5 to 1.1 mS/cm, while the interfacial impedance decreased from 1350 to 285 Ω⋅cm 2 compared to that of conventional NASICON. Solid‐state sodium battery with MF‐enabled NASICON exhibited a specific capacity of 110 mAh/g over 1000 cycles with 80% capacity retention. Moreover, as a proof of concept, lithium lanthanum zirconium oxide (LLZO) is also fabricated by the MF method for a lithium solid‐state battery, which exhibited similarly superior electrochemical performances. Overall, this study provides new insights on ceramic SSE synthesis to intrinsically improve the electrochemical performances via tuning the microstructure of the sol–gel precursors.
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