Divalent anion-driven framework regulation in Zr-based halide solid electrolytes for all-solid-state batteries
- Jae-Seung Kim
- Daseul Han
- Jinyeong Choe
- Youngkyung Kim
- Hae-Yong Kim
- Soeul Lee
- Jiwon Seo
- Seung-Hui Ham
- You-Yeob Song
- Chang-Dae Lee
- Juho Lee
- Hiram Kwak
- Jinsoo Kim
- Yoon Seok Jung
- Sung-Kyun Jung
- Kyung-Wan Nam
- Dong-Hwa Seo
2025-11-27
Research into solid electrolytes for all-solid-state batteries has intensified due to demand for safer and higher-energy-density batteries. Halide solid electrolytes are valued for their high ionic conductivity, oxidative stability, and ductility. Among them, Li 2 ZrCl 6 is cost-effective but has a relatively lower Li⁺ ionic conductivity (0.4 mS cm −1 at 25 °C) compared to other halides, such as Li 3 InCl 6 (> 1 mS cm −1 at 25 °C). Here, we elucidate a fundamental mechanism of divalent-anion-driven framework modification that enables enhanced ionic conduction in Zr-based halides. Specifically, we demonstrate enhanced Li + conductivities for oxygen- (0.8Li 2 O–ZrCl 4 : 1.78 mS cm −1 at 25 °C) and sulfur- (0.8Li 2 S–ZrCl 4 : 1.01 mS cm −1 at 25 °C) substituted lattices. Synchrotron-based X-ray analyses identify distinct anionic sublattices and first-principles calculations reveal that divalent anions locally cluster within the lattice, inducing structural distortion and Li-site destabilization. These changes widen lithium conduction channels and alter the bonding environment, weakening and diversifying Li–Cl interactions. As a result, the energy landscape for lithium migration is flattened, leading to improved ionic conduction. These findings highlight design strategies for divalent-anion-driven framework regulation in halide solid electrolytes.