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加速多晶导体中的离子传输:关于孔隙和晶界

Accelerating ion transport in polycrystalline conductors: On pores and grain boundaries.

作者信息

Truong Erica, Patel Sawankumar V, Liu Haoyu, Chen Yudan, Lacivita Valentina, Zhang Chi, Oyekunle Ifeoluwa P, Ojelade Islamiyat, Jin Yongkang, Jones Brendon T, Miara Lincoln J, Dravid Vinayak P, Gao Hanwei, Kim Ryounghee, Wang Yan, Hu Yan-Yan

机构信息

Department of Chemistry and Biochemistry, Florida State University, Tallahassee, FL, 32306, USA.

Center of Interdisciplinary Magnetic Resonance, National High Magnetic Field Laboratory, 1800 East Paul Dirac Drive, Tallahassee, FL 32310, USA.

出版信息

Sci Adv. 2025 May 16;11(20):eadt7795. doi: 10.1126/sciadv.adt7795. Epub 2025 May 14.

Abstract

Polycrystalline ion conductors are widely used as solid electrolytes in energy storage technologies. However, they often exhibit poor ion transport across grain boundaries and pores. This work demonstrates that strategically tuning the mesoscale microstructures, including pore size, pore distribution, and chemical compositions of grain boundaries, can improve ion transport. Using LiTaPO as a case study, we have shown that the combination of LiF as a sintering agent with Hf implantation improves grain-grain contact, resulting in smaller, evenly distributed pores, reduced chemical contrast, and minimized nonconductive impurities. A suite of techniques has been used to decouple the effects of LiF and Hf. Specifically, LiF modifies particle shape and breaks large pores into smaller ones, while Hf addresses the chemical mismatches between grains and grain boundaries. Consequently, this approach achieves nearly two orders of magnitude improvement in ion conduction. Tuning mesoscale structures offers a cost-effective method for enhancing ion transport in polycrystalline systems and has notable implications for synthesizing high-performance ionic materials.

摘要

多晶离子导体作为储能技术中的固体电解质被广泛使用。然而,它们在晶界和孔隙间的离子传输往往较差。这项工作表明,从战略角度调整中尺度微观结构,包括孔径、孔隙分布和晶界的化学成分,可以改善离子传输。以LiTaPO为例,我们已经表明,作为烧结剂的LiF与Hf注入相结合可改善晶粒间接触,从而产生更小、分布均匀的孔隙,降低化学对比度,并使非导电杂质最小化。已使用一系列技术来区分LiF和Hf的作用。具体而言,LiF改变颗粒形状并将大孔隙分解成较小的孔隙,而Hf解决晶粒与晶界之间的化学不匹配问题。因此,这种方法使离子传导提高了近两个数量级。调整中尺度结构为增强多晶体系中的离子传输提供了一种经济高效的方法,并且对合成高性能离子材料具有显著意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9ea3/12077497/9b019eaf1290/sciadv.adt7795-f1.jpg

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