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October 13, 2025Advanced Theory and Simulations2 citations

Computational Design of 2D Materials for Zinc‐Ion Batteries Using Density Functional Theory Calculations

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MAMuhammad ArifYLYixin LiQZQi Zhang

Key Points

  • This review demonstrates how density functional theory can optimize electrode performance in zinc-ion batteries.
  • It covers critical aspects including ion transport kinetics and electrochemical reaction mechanisms to enhance zinc-ion batteries.
  • The systematic examination of 2D materials focuses on their adsorption mechanisms and electronic properties for improved battery performance.
  • Future directions for both theoretical and experimental research in zinc-ion batteries are discussed, emphasizing advancements in 2D materials.

Abstract

Abstract Zinc‐ion batteries (ZIBs) are emerging as promising energy storage systems due to their high theoretical capacity, environmental friendliness, and cost‐effectiveness. However, ZIBs face serious challenges including dendrite growth, limited energy density, and cycling stability issues. 2D materials have garnered significant interest as electrode materials in ZIBs due to their potential for defect engineering, heterostructure formation, and interlayer modifications. Density functional theory (DFT) calculations have played a pivotal role in understanding the inherent properties of these materials and their electrochemical reaction mechanisms. This review systematically examines the computational design of various 2D materials for ZIB electrode applications, focusing on ion transport kinetics, adsorption mechanisms, electronic band structures, density of states, charge distributions, and migration barriers through first‐principles calculations. This review demonstrates how DFT‐guided design strategies can optimize electrode performance and concludes by discussing the future direction for advancing both theoretical and experimental research in ZIBs.

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Cite This Study

Arif et al. (2025) studied this question.

synapsesocial.com/papers/68ed4e04d3b1bfa344c601a1https://doi.org/10.1002/adts.202501346
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