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How particle shape affects battery performance

Research output: Contribution to conferenceAbstractpeer-review

Abstract

Particle morphology (i.e. size and shape) plays a critical role in determining the microstructure and performance of battery electrodes, however, the influence of particle shape remains underexplored compared to particle size or composition. This review synthesises findings from experiments and numerical simulations, on how particle morphology governs electrode behaviour, in terms of microstructure and charge transfer. Particle shape strongly affects electrode porosity, particularly for coarse active materials1, hence, incorporating realistic shapes in simulations improves the prediction of fracture behaviour and breakage risk2. At the performance level, morphological heterogeneity increases tortuosity relative to sphere-based packings, lengthening ionic transport paths3. Impedance studies show that spherical microstructures exhibit isotropic behaviour, whereas irregular shapes induce strong in-plane versus through-plane anisotropy in ionic and electronic conduction1. These results highlight morphology-driven trade-offs between packing density, transport efficiency, and mechanical durability, and emphasise the potential benefits of particle shape metrology tools for optimising electrode design.
Original languageEnglish
Publication statusPublished - 30 Sept 2025
EventInternational Particle Technology Forum - National Physical Laboratory (NPL) - Institute of Quantum Standards and Technologies (IQST), Teddington, United Kingdom
Duration: 30 Sept 2025 → …
https://www.rsc.org/events/detail/81977/international-particle-technology-forum

Conference

ConferenceInternational Particle Technology Forum
Country/TerritoryUnited Kingdom
CityTeddington
Period30/09/2025 → …
Internet address

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • Particle shape
  • Lithium-ion battery
  • Electrode microstructure
  • Performance

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