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March 10, 2026Batteries & Supercaps1 citations

Recent Advances in Magnesium Battery Chemistry: Electrolyte–Electrolyte‐Derived Active Ion Species as the Key to Interfacial Performance

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HQHangchen QuWDWei DongZCZhenfei Chang

Key Points

  • The aim is to explore interfacial challenges in magnesium-ion batteries and propose solutions for improved performance.
  • Review and summarize mechanisms of ion components in various electrolyte systems.
  • Analyze interfacial reaction kinetics and thermodynamics at anode and cathode.
  • Diagnose electrochemical hurdles and evaluate engineering strategies.
  • Identified key differences in ion species across electrolyte systems affect Mg migration.
  • Detected significant gaps between practical performance and theoretical potential of Mg-ion batteries.
  • Proposed standardized testing for reliable data on magnesium-ion battery performance.

Abstract

Rechargeable magnesium‐ion batteries (MIBs) have garnered significant attention due to their high theoretical energy density and favorable safety profiles. However, their practical application is still hindered by critical interfacial challenges, i.e., passivation of the magnesium metal anode and sluggish Mg 2+ intercalation kinetics in the cathode. Fundamentally, these issues stem from the substantial differences in chemical properties of active ion species (e.g., MgCl + , Mg·solvent n 2+ ) across various electrolyte systems, which directly govern the Mg migration capability within electrode, alternating the deposition/intercalation reactions. This review systematically summarizes the mechanisms by which characteristic ion components in diverse electrolytes (i.e., Cl‐containing complexes, weakly coordinating anion electrolytes, aqueous electrolytes, and emerging solid‐state systems) regulate the thermodynamics and kinetics of interfacial reactions at both the anode and cathode. This review critically deconstructs the persistent gap between the practical performance of Mg‐ion batteries and their theoretical targets of >2.5 V and 300 mAh g −1 . Moving beyond a simple catalog of advances, we diagnose the fundamental electrochemical hurdles and propose targeted electrolyte and interfacial engineering strategies as synergistic solutions. Moreover, we advocate for standardized testing to build reliable data. Overall, this review links diagnostics with solutions to guide the rational design of high‐performance MIBs.

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Cite This Study

Qu et al. (2026) studied this question.

synapsesocial.com/papers/69af959570916d39fea4d596https://doi.org/10.1002/batt.202500756
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