Pre‐Sodiation Strategies for Sodium‐Ion Batteries: From Mechanisms to a Multidimensional Evaluation Framework

ABSTRACT The irreversible consumption of sodium ions during the initial cycle, leading to low initial Coulombic efficiency and rapid capacity decay, poses a fundamental bottleneck to the commercialization of sodium‐ion batteries. While pre‐sodiation has emerged as a pivotal strategy to compensate for this sodium deficit, the field currently lacks a systematic methodology to critically assess and rationally select among diverse pre‐sodiation tactics beyond mere electrochemical metrics. This review addresses this need by synthesizing existing evaluation criteria into a structured multidimensional assessment paradigm. We first delineate the mechanistic underpinnings of physical, electrochemical, chemical, and additive‐based pre‐sodiation strategies. We then introduce a systematic framework that integrates electrochemical performance, interfacial physicochemical properties, and electrode structural evolution to provide a holistic assessment of pre‐sodiation efficacy. Furthermore, we highlight how advanced operando and ex situ characterization techniques decode underlying compensation mechanisms and quantify kinetic improvements. Finally, a comparative analysis based on controllability, scalability, and manufacturing compatibility is presented, offering strategic guidelines for protocol selection. Ultimately, this work provides a foundational reference and a practical decision‐making guide, facilitating the rational design of efficient pre‐sodiation technologies for practical sodium‐ion batteries.

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Journal
Advanced Energy Materials
Published
2026-09-25
DOI
https://doi.org/10.1002/aenm.71636
Primary Topic
Advancements in Battery Materials
Type
article
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article

Pre‐Sodiation Strategies for Sodium‐Ion Batteries: From Mechanisms to a Multidimensional Evaluation Framework

Hao Liu, Yanfu Tong, Wei Dong Xing, Zifeng Yan et al.
Advanced Energy Materials
Advancements in Battery Materials
article

Pre‐Sodiation Strategies for Sodium‐Ion Batteries: From Mechanisms to a Multidimensional Evaluation Framework

Hao Liu, Yanfu Tong, Wei Dong Xing, Zifeng Yan, Pengyun Liu, Qin Cui, Congyue Sun, Changyong Song, Xuejin Li
article en

Abstract

ABSTRACT The irreversible consumption of sodium ions during the initial cycle, leading to low initial Coulombic efficiency and rapid capacity decay, poses a fundamental bottleneck to the commercialization of sodium‐ion batteries. While pre‐sodiation has emerged as a pivotal strategy to compensate for this sodium deficit, the field currently lacks a systematic methodology to critically assess and rationally select among diverse pre‐sodiation tactics beyond mere electrochemical metrics. This review addresses this need by synthesizing existing evaluation criteria into a structured multidimensional assessment paradigm. We first delineate the mechanistic underpinnings of physical, electrochemical, chemical, and additive‐based pre‐sodiation strategies. We then introduce a systematic framework that integrates electrochemical performance, interfacial physicochemical properties, and electrode structural evolution to provide a holistic assessment of pre‐sodiation efficacy. Furthermore, we highlight how advanced operando and ex situ characterization techniques decode underlying compensation mechanisms and quantify kinetic improvements. Finally, a comparative analysis based on controllability, scalability, and manufacturing compatibility is presented, offering strategic guidelines for protocol selection. Ultimately, this work provides a foundational reference and a practical decision‐making guide, facilitating the rational design of efficient pre‐sodiation technologies for practical sodium‐ion batteries.

Advanced Energy Materials
China University of Petroleum, East China (CN)
Openalex Percentile: Top 21%
Advancements in Battery Materials
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Pre‐Sodiation Strategies for Sodium‐Ion Batteries: From Mechanisms to a Multidimensional Evaluation Framework — Hao Liu, Yanfu Tong, et al. · Advanced Energy Materials (2026) | TGRS Research Map | TGRS