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Published in 2024 at "Advanced Functional Materials"
DOI: 10.1002/adfm.202409134
Abstract: Although polymer electrolytes have shown great potential in solid‐state lithium metal batteries (LMBs), the polymer chain segments anchor the movement of lithium ions (Li+), which induces the low ionic conductivity of the electrolytes and limits…
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Keywords:
lithium;
dipole interaction;
ion dipole;
lithium ions ... See more keywords
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Published in 2022 at "Advanced Materials"
DOI: 10.1002/adma.202202143
Abstract: Solid polymer electrolytes with large ionic conductivity, high ionic transference number, and good interfacial compatibility with electrodes are highly desired for solid‐state batteries. However, unwanted polarizations and side reactions occurring in traditional dual‐ion polymer conductors…
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Keywords:
ion dipole;
polymer;
ion polymer;
solid state ... See more keywords
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Published in 2025 at "Advanced materials"
DOI: 10.1002/adma.202510894
Abstract: Low‐temperature lithium metal batteries (LT‐LMBs) are increasingly desired for higher energy density and longer lifespan. However, due to organic electrolyte solidification, LT‐LMBs are impeded by huge barriers resulting from the hindrance of larger solvation shells…
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Keywords:
ion dipole;
low temperature;
metal;
dipole interactions ... See more keywords
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Published in 2020 at "Chemistry of Materials"
DOI: 10.1021/acs.chemmater.0c00096
Abstract: Ionic conductors that combine transparency, elasticity, and underwater self-healing capability are highly desirable because of their applications in biosensors, touch panels, marine ships, and so forth. Polymer materials based on ion–dipole interactions can meet these…
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Keywords:
ion dipole;
ion;
dipole interactions;
self healing ... See more keywords