Eine Plattform für die Wissenschaft: Bauingenieurwesen, Architektur und Urbanistik
A Highly Durable Rubber‐Derived Lithium‐Conducting Elastomer for Lithium Metal Batteries
Elastomers offer attractive advantages over classical solid‐state electrolytes in terms of ensuring stable interfacial contact and maintaining fatigue durability, but the low ionic conductivity obstructs their practical applications in long‐life lithium metal batteries. In this work, rubber‐derived lithium‐conducting elastomer has been developed via sulfur vulcanization of nitrile butadiene rubber with a polymerizable ionic liquid to provide both high resilience and dramatically improved ionic conductivity. Owing to the chemically crosslinked network between rubber chains and ionic liquid fragments generated during vulcanization, the elastic lithium‐conductor achieves high resilience of 0.92 MJ m−3, superior cyclic durability of 1000 cycles at 50% strain, and high room‐temperature ionic conductivity of 2.7 × 10−4 S cm−1. Consequently, the corresponding solid‐state lithium/LiFePO4 battery exhibits a high capacity of ≈146 mAh g−1 with a high capacity retention of 94.3% for up to 300 cycles.
A Highly Durable Rubber‐Derived Lithium‐Conducting Elastomer for Lithium Metal Batteries
Elastomers offer attractive advantages over classical solid‐state electrolytes in terms of ensuring stable interfacial contact and maintaining fatigue durability, but the low ionic conductivity obstructs their practical applications in long‐life lithium metal batteries. In this work, rubber‐derived lithium‐conducting elastomer has been developed via sulfur vulcanization of nitrile butadiene rubber with a polymerizable ionic liquid to provide both high resilience and dramatically improved ionic conductivity. Owing to the chemically crosslinked network between rubber chains and ionic liquid fragments generated during vulcanization, the elastic lithium‐conductor achieves high resilience of 0.92 MJ m−3, superior cyclic durability of 1000 cycles at 50% strain, and high room‐temperature ionic conductivity of 2.7 × 10−4 S cm−1. Consequently, the corresponding solid‐state lithium/LiFePO4 battery exhibits a high capacity of ≈146 mAh g−1 with a high capacity retention of 94.3% for up to 300 cycles.
A Highly Durable Rubber‐Derived Lithium‐Conducting Elastomer for Lithium Metal Batteries
Shi, Yongzheng (Autor:in) / Yang, Na (Autor:in) / Niu, Jin (Autor:in) / Yang, Shubin (Autor:in) / Wang, Feng (Autor:in)
Advanced Science ; 9
01.05.2022
8 pages
Aufsatz (Zeitschrift)
Elektronische Ressource
Englisch
Highly conducting fibrous carbon-coated silicon alloy anode for lithium ion batteries
British Library Online Contents | 2018
|Wiley | 2019
|Highly Conductive Polyoxanorbornene‐Based Polymer Electrolyte for Lithium‐Metal Batteries
Wiley | 2023
|British Library Online Contents | 2001
|Confronting the Challenges in Lithium Anodes for Lithium Metal Batteries
Wiley | 2021
|