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February 20, 2026Carbon Neutralization16 citationsOpen Access

Metal‐Organic Framework‐Based Materials for Zinc‐Halogen (Br 2 , I 2 ) Batteries: Mechanisms and Performance

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MBMuhammad Saad BhattiHAHassan AkhtarMJMuhammad Sufyan Javed

Key Points

  • The aim is to explore how metal-organic frameworks can enhance the performance of zinc-halogen batteries by addressing existing limitations.
  • Review of existing literature on zinc-bromine and zinc-iodine batteries
  • Analysis of metal-organic frameworks (MOFs) as materials
  • Evaluation of strategies using MOFs and MOF-derived carbons
  • Identified slow redox reactions and zinc dendrite growth as key issues
  • Described the use of MOFs for selective barriers and enhanced conductivity
  • Highlighted the need for stable and conductive MOF-derived materials in acidic environments

Abstract

ABSTRACT Zinc–bromine and zinc–iodine batteries have been widely regarded as promising systems for large‐scale energy storage, yet their practical application is currently hampered by slow redox reactions, low efficiency due to the shuttle effect, and zinc dendrite growth. In this review, we overview the contribution of metal–organic frameworks (MOFs) and MOF‐derived materials to overcoming these drawbacks. Two typical strategies are presented: assembling pristine MOFs as selective porous barriers to confine polyhalides and MOF‐templated carbon materials, including single‐atom catalysts for enhanced conductivities and fast charge transfer. We show that pristine MOFs exhibit interesting selectivity properties but rarely meet the required chemical stability in acidic electrolytes. However, MOF‐based carbons are more stable and conductive, but their performance requires careful regulation of synthesis conditions to maintain active sites. Overall, it seems most promising to develop bifunctional hosts that are conductive carbon frameworks embedded with single‐atom metal sites, which both trap adsorbed halogen species and catalyze their decomposition. This review highlights the critical developments required to progress from promising electrochemical data in the laboratory to practical high‐capacity battery electrodes.

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Cite This Study

Bhatti et al. (2026) studied this question.

synapsesocial.com/papers/6997f9b8ad1d9b11b3452612https://doi.org/10.1002/cnl2.70125
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