Probing three-dimensional sodiation-desodiation equilibrium in sodium-ion batteries by in situ hard X-ray nanotomography.

Nat Commun

National Synchrotron Light Source II, Brookhaven National Laboratory, Building 743 Ring Road, Upton, New York 11973, USA.

Published: June 2015

AI Article Synopsis

  • Materials degradation in sodium alloy anodes is expected to be worse than in lithium alloys due to the larger size of sodium ions, which limits their application in battery systems.
  • Using synchrotron hard X-ray nanotomography, researchers observed the structural and chemical changes in tin anodes for sodium-ion batteries, revealing a unique (de)sodiation equilibrium across multiple cycles.
  • The study found that sodium-ion batteries show better structural reversibility and different morphological changes compared to lithium-ion batteries, suggesting greater potential for sodium-ion technology than previously thought.

Article Abstract

Materials degradation-the main limiting factor for widespread application of alloy anodes in battery systems-was assumed to be worse in sodium alloys than in lithium analogues due to the larger sodium-ion radius. Efforts to relieve this problem are reliant on the understanding of electrochemical and structural degradation. Here we track three-dimensional structural and chemical evolution of tin anodes in sodium-ion batteries with in situ synchrotron hard X-ray nanotomography. We find an unusual (de)sodiation equilibrium during multi-electrochemical cycles. The superior structural reversibility during 10 electrochemical cycles and the significantly different morphological change features from comparable lithium-ion systems suggest untapped potential in sodium-ion batteries. These findings differ from the conventional thought that sodium ions always lead to more severe fractures in the electrode than lithium ions, which could have impact in advancing development of sodium-ion batteries.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4491187PMC
http://dx.doi.org/10.1038/ncomms8496DOI Listing

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