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Published in 2021 at "Advanced Functional Materials"
DOI: 10.1002/adfm.202008632
Abstract: Polymer electrolytes (PEs) have been deemed as a sought‐after candidate for next‐generation lithium batteries. Substantial effort has been dedicated to exploiting PEs with improved comprehensive performance. Organoboron compounds have aroused great interest in PEs due…
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Keywords:
lithium batteries;
organoboron containing;
performance;
lithium ... See more keywords
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Published in 2025 at "Advanced Functional Materials"
DOI: 10.1002/adfm.202424362
Abstract: Unsatisfying preparation controllability, mechanical properties, ionic conductivities, and working voltage windows limit the practical applications of solid polymer electrolytes (SPEs) in lithium‐metal batteries. Herein, a 3D printing strategy combined with zwitter molecule modification is proposed…
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Keywords:
lithium;
lithium metal;
metal batteries;
polymer electrolytes ... See more keywords
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Published in 2025 at "Advanced Functional Materials"
DOI: 10.1002/adfm.202508573
Abstract: Solid polymer electrolytes (SPE) offer advantages including compatibility with conventional electrolyte systems and mechanical flexibility; however, low ionic conductivity and high interfacial resistance present significant challenges. Here, systems are proposed that randomly crosslink all‐materials constituting…
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Keywords:
lithium;
material crosslinked;
polymer electrolytes;
performance ... See more keywords
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Published in 2025 at "Advanced Functional Materials"
DOI: 10.1002/adfm.202512265
Abstract: Solid polymer electrolytes based on poly(ethylene oxide) (PEO) are promising candidates for next‐generation Li + batteries but suffer from limited Li + transference numbers and stability issues at high voltages. Fluorination emerges as an effective…
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Keywords:
fluorination;
transport;
fluorination patterns;
polymer electrolytes ... See more keywords
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Published in 2022 at "Advanced Materials"
DOI: 10.1002/adma.202203413
Abstract: Achieving superionic conductivity from solid‐state polymer electrolytes is an important task in the development of future energy storage and conversion technologies. Herein, a platform for innovative electrolyte technologies based on a bifunctional polymer, poly(3‐hydroxy‐4‐sulfonated styrene)…
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Keywords:
storage conversion;
polymer electrolytes;
polymer;
solid state ... See more keywords
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Published in 2022 at "Advanced Materials"
DOI: 10.1002/adma.202204816
Abstract: The development of advanced solid‐state energy‐storage devices is contingent upon finding new ways to produce and manufacture scalable, high‐modulus solid‐state electrolytes that can simultaneously provide high ionic conductivity and robust mechanical integrity. In this work,…
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Keywords:
polymer electrolytes;
solid polymer;
printing nanostructured;
conductivity ... See more keywords
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Published in 2022 at "Advanced Materials"
DOI: 10.1002/adma.202209402
Abstract: All‐solid‐state polymer electrolytes (ASPEs) with excellent processivity are considered one of the most forward‐looking materials for large‐scale industrialization. However, the contradiction between improving the mechanical strength and accelerating the ionic migration of ASPEs has always…
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Keywords:
entropy;
polymer electrolytes;
high entropy;
solid state ... See more keywords
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Published in 2024 at "Advanced Science"
DOI: 10.1002/advs.202411437
Abstract: The low lithium‐ion conductivity of polyethylene oxide (PEO)‐based polymer electrolytes limits their application in solid‐state lithium batteries and related fields. Here, ionic liquids (ILs) are injected into hollow silicon nanorods (HSNRs) to prepare a composite…
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Keywords:
lithium;
hollow silicon;
polymer electrolytes;
lithium ion ... See more keywords
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Published in 2021 at "Advanced Energy Materials"
DOI: 10.1002/aenm.202003836
Abstract: Realizing solid‐state lithium batteries with higher energy density and enhanced safety compared to the conventional liquid lithium‐ion batteries is one of the primary research and development goals set for next‐generation batteries in this decade. In…
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Keywords:
solid state;
state lithium;
lithium;
ion ... See more keywords
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Published in 2024 at "Advanced Energy Materials"
DOI: 10.1002/aenm.202402671
Abstract: Solid‐state batteries (SSBs) have attracted much attention for high‐energy‐density and high‐safety energy storage devices. Solid polymer electrolytes (SPEs) have emerged as a critical component in the advancement of SSBs, owing to the compelling advantages of…
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Keywords:
temperature;
polymer electrolytes;
crosslinked spes;
network ... See more keywords
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Published in 2024 at "Advanced Energy Materials"
DOI: 10.1002/aenm.202403082
Abstract: Solid‐state polymer electrolytes (SPEs) require high ionic conductivity and dense contact with the electrodes for high‐performance lithium‐metal solid‐state batteries. However, massive challenges such as poor ionic migration ability, low antioxidant ability, and lithium dendrite formation…
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Keywords:
lithium;
lithium metal;
polymer electrolytes;
polymer ... See more keywords