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Enhanced safety of lithium ion batteries through a novel functional separator with encapsulated flame retardant and hydroxide ceramics

Title
Enhanced safety of lithium ion batteries through a novel functional separator with encapsulated flame retardant and hydroxide ceramics
Author(s)
Roh, YoungjoonKim, DongyoungJin, DaheeKim, DohwanHan, CheolheeChoi, JaecheolLee, HochunLee, Young-GiLee, Yong Min
Issued Date
2023-10
Citation
Chemical Engineering Journal, v.474
Type
Article
Author Keywords
Encapsulated flame retardantThermal stabilityElectrochemical performanceHigh-energy -density applicationsCeramic -coated separator
Keywords
MECHANISMPHASE-CHANGE MATERIALSFIREPERFORMANCE
ISSN
1385-8947
Abstract
The safety concerns associated with lithium-ion batteries (LiBs) pose a significant obstacle to the widespread practical use of high-energy–density batteries. To address this challenge, we developed a functional flame-retardant and ceramic-coated separator (F-CCS) that enhances safety features while maintaining optimal performance. The F-CCS incorporates an encapsulated flame retardant and a hydroxide ceramic, namely AlOOH, to achieve flame retardancy. We integrated a phosphorus-based flame retardant, triethyl phosphate (TEP), which formed a carbonized layer, effectively suppressing fire and creating a protective layer. To safeguard the TEP from the electrolyte and electrochemical reactions, it is encapsulated within a cross-linked polymer. By carefully optimizing the ratio of the encapsulated flame retardant to ceramic in the coating layer, the F-CCS attains a balance between thermal stability, flame retardancy, and ionic conductivity. Notably, the F-CCS formed a flame-retardant protective layer on the surface of the separator to maintain the area without catching fire, as shown in the video. Evaluation of the electrochemical performance revealed suitable power performance and cycle stability, comparable to those of conventional CCSs. These findings present a promising solution for enhancing the safety and reliability of LiBs, particularly in high-energy–density applications, thereby paving the way for their wider implementation. © 2023 Elsevier B.V.
URI
http://hdl.handle.net/20.500.11750/46650
DOI
10.1016/j.cej.2023.145937
Publisher
Elsevier B.V.
Related Researcher
  • 이호춘 Lee, Hochun
  • Research Interests Lithium-ion batteries; Novel Materials for rechargeable batteries; Novel energy conversion;storage systems; Electrochemistry; 리튬이차전지; 이차전지용 신규 전극 및 전해액; 신규 에너지변환 및 저장 시스템; 전기화학
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Appears in Collections:
Department of Energy Science and Engineering Electrochemistry Laboratory for Sustainable Energy(ELSE) 1. Journal Articles
Department of Energy Science and Engineering Battery Materials & Systems LAB 1. Journal Articles

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