Effect of Confinement on Ion Transport in Polymer Electrolytes

Abstract Understanding ion transport in polymer electrolytes is important for elucidating the molecular origins of transport limitations and opportunities in nanostructured solid polymer electrolytes for lithium batteries. Here, we use all-atom molecular dynamics simulations to elucidate how cylindrical confinement regulates the structure and dynamics of poly(ethylene oxide) (PEO)-based electrolytes. Decreasing the nanotube diameter drives pronounced polymer chain segregation and reorganizes the spatial distribution of coordinating oxygen sites. This confinement-induced structural rearrangement markedly suppresses ion–segment codiffusion along short chain segments and inhibits interchain hopping, leading to a substantial decrease in Li+ mobility. However, upon decreasing nanotube diameter, Li+–EO coordination becomes stronger, which amplifies distinct cation–cation correlations; this competition between slowed ion mobility and strengthened ion–ion correlations gives rise to a nonmonotonic dependence of ionic conductivity on nanotube diameter. To disentangle geometric confinement from specific polymer electrolyte–wall interactions, we perform control simulations with hard walls, where the hard wall provides only steric exclusion; these results confirm that the nonmonotonic trend cannot be explained by geometric confinement alone and instead requires the inclusion of specific polymer electrolyte–wall interactions. Together, our results reveal the intricate coupling among confinement geometry, interfacial interactions, polymer organization, and ion transport, providing an atomistic basis for understanding ion transport in nanochannel-confined polymer electrolytes.

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Publication Details

Journal
The Journal of Physical Chemistry B
Published
2026-10-06
DOI
https://doi.org/10.1021/acs.jpcb.6c04811
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
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article

Effect of Confinement on Ion Transport in Polymer Electrolytes

Linbo Ma, Zhixuan Zhong, Jian Hui Jiang, Di Xu et al.
The Journal of Physical Chemistry B
Advanced Battery Materials and Technologies
article

Effect of Confinement on Ion Transport in Polymer Electrolytes

Linbo Ma, Zhixuan Zhong, Jian Hui Jiang, Di Xu, Lifeng Xu, Ruochao Wang
article en

Abstract

Abstract Understanding ion transport in polymer electrolytes is important for elucidating the molecular origins of transport limitations and opportunities in nanostructured solid polymer electrolytes for lithium batteries. Here, we use all-atom molecular dynamics simulations to elucidate how cylindrical confinement regulates the structure and dynamics of poly(ethylene oxide) (PEO)-based electrolytes. Decreasing the nanotube diameter drives pronounced polymer chain segregation and reorganizes the spatial distribution of coordinating oxygen sites. This confinement-induced structural rearrangement markedly suppresses ion–segment codiffusion along short chain segments and inhibits interchain hopping, leading to a substantial decrease in Li+ mobility. However, upon decreasing nanotube diameter, Li+–EO coordination becomes stronger, which amplifies distinct cation–cation correlations; this competition between slowed ion mobility and strengthened ion–ion correlations gives rise to a nonmonotonic dependence of ionic conductivity on nanotube diameter. To disentangle geometric confinement from specific polymer electrolyte–wall interactions, we perform control simulations with hard walls, where the hard wall provides only steric exclusion; these results confirm that the nonmonotonic trend cannot be explained by geometric confinement alone and instead requires the inclusion of specific polymer electrolyte–wall interactions. Together, our results reveal the intricate coupling among confinement geometry, interfacial interactions, polymer organization, and ion transport, providing an atomistic basis for understanding ion transport in nanochannel-confined polymer electrolytes.

The Journal of Physical Chemistry B
Chinese Academy of Sciences (CN), China Academy of Safety Sciences and Technology (CN), Institute of Chemistry (CN), University of Chinese Academy of Sciences (CN), Sinopec Research Institute of Petroleum Processing
Openalex Percentile: Top 22%
Advanced Battery Materials and Technologies
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