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Communication | Open Access

Li+/Na+ Hybrid Ion Conduction Mechanism in the Superionic Conductor Li3–xNaxZr2Si2PO12

Yi-Hong WuaXia Xieb,cLei ZhudMu-Ran YueGuo-Tai ZhangeJun-Chao Chene ( )Shu-Ying Suna ( )You-Wei Wangb,c ( )Wei-Ping Tange ( )
School of Resources and Environmental Engineering, East China University of Science and Technology, Shanghai, 200237, China
State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, 200050, China
Center of Materials Science and Optoelectronics Engineering, College of Materials Science and Optoelectronic Technology, University of Chinese Academy of Sciences, Beijing, 100049, China
State Key Laboratory of Space Power-Sources Technology, Shanghai Institute of Space Power-Sources, Shanghai, 200245, China
School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai, 200240, China
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Abstract

Hybrid ion conductors that transport multiple ionic conductive species provide a useful platform for understanding how mixed-ion transport governs ionic conductivity within a single phase. However, the controlled introduction of multiple mobile ions into solid-state electrolytes and a mechanistic understanding of their migration within the framework remain challenging. Herein, a skeleton-retained Li+↔Na+ cationic exchange was used to simultaneously induce Li+ and Na+ cations into the NASICON-type framework of Li3–xNaxZr2Si2PO12 (0 < x < 3). We show that the interpenetration of NaO6 and NaO8 coordination polyhedra significantly influences the ionic conductivity of hybrid ion conductors. Computational analysis indicates that Na+ transfer from octahedral NaO6 sites to octa-coordinated NaO8 sites is thermodynamically favorable, accompanied by Li+ relocation from NaO8 to tetrahedral LiO4 environments at former NaO6 sites, thereby promoting Li+/Na+ site segregation. The increased occupation of Na+ at NaO8 sites not only suppresses Na+ mobility due to bottleneck limitations but also hinders the formation of a continuous Li+ migration network, thereby reducing the room-temperature ionic conductivity from 1.78 to 0.50 mS·cm–1. Upon re-exchange, Na+ in the NaO8 sites is replaced by Li+ in penta-coordinated LiO5, which re-establish percolating ion-transport pathways for Li+ and enable reversible recovery of the overall conductivity. These results reveal a fast dual-ion conduction mechanism enabled by the interpenetrating occupation of Li+ and Na+ across the available sites. This work opens a new avenue for the development of hybrid ion conductors.

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Journal of Electrochemistry

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Cite this article:
Wu Y-H, Xie X, Zhu L, et al. Li+/Na+ Hybrid Ion Conduction Mechanism in the Superionic Conductor Li3–xNaxZr2Si2PO12. Journal of Electrochemistry, 2026, 32(6). https://doi.org/10.61558/2993-074X.3612

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Received: 07 February 2026
Revised: 01 April 2026
Accepted: 22 April 2026
Published: 22 April 2026
© 2026 Xiamen University and Chinese Chemical Society.

This is an open access article under the CC BY 4.0 license (https://creativecommons.org/licenses/by/4.0/).