Cargando…

High-safety and high-efficiency electrolyte design for 4.6 V-class lithium-ion batteries with a non-solvating flame-retardant

Nonflammable electrolytes are critical for the safe operation of high-voltage lithium-ion batteries (LIBs). Although organic phosphates are effective flame retardants, their poor electrochemical stability with a graphite (Gr) anode and Ni-rich cathodes would lead to the deterioration of electrode ma...

Descripción completa

Detalles Bibliográficos
Autores principales: Chen, Li, Nian, Qingshun, Ruan, Digen, Fan, Jiajia, Li, Yecheng, Chen, Shunqiang, Tan, Lijiang, Luo, Xuan, Cui, Zhuangzhuang, Cheng, Yifeng, Li, Changhao, Ren, Xiaodi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9891389/
https://www.ncbi.nlm.nih.gov/pubmed/36756331
http://dx.doi.org/10.1039/d2sc05723a
_version_ 1784881127640530944
author Chen, Li
Nian, Qingshun
Ruan, Digen
Fan, Jiajia
Li, Yecheng
Chen, Shunqiang
Tan, Lijiang
Luo, Xuan
Cui, Zhuangzhuang
Cheng, Yifeng
Li, Changhao
Ren, Xiaodi
author_facet Chen, Li
Nian, Qingshun
Ruan, Digen
Fan, Jiajia
Li, Yecheng
Chen, Shunqiang
Tan, Lijiang
Luo, Xuan
Cui, Zhuangzhuang
Cheng, Yifeng
Li, Changhao
Ren, Xiaodi
author_sort Chen, Li
collection PubMed
description Nonflammable electrolytes are critical for the safe operation of high-voltage lithium-ion batteries (LIBs). Although organic phosphates are effective flame retardants, their poor electrochemical stability with a graphite (Gr) anode and Ni-rich cathodes would lead to the deterioration of electrode materials and fast capacity decay. Herein, we develop a safe and high-performance electrolyte formulation for high-voltage (4.6 V-class) LIBs using flame-retarding ethoxy(pentafluoro) cyclotriphosphazene (PFPN) as a non-solvating diluent for the high-concentration carbonate–ether hybrid electrolyte. In contrast to conventional nonflammable additives with restricted dosage, the high level of PFPN (69% mass ratio in our electrolyte design) could significantly increase the electrolyte flash point and protect the favored anion-rich inner solvation sheath because of its non-solvating feature, thus preventing solvent co-intercalation and structural damage to the Gr anode. The nonflammable electrolyte could also form a stable LiF-rich cathode electrolyte interphase (CEI), which enables superior electrochemical performances of Gr‖LiNi(0.8)Mn(0.1)Co(0.1)O(2) (NMC811) full cells at high voltages (∼82.0% capacity retention after 1000 cycles at 4.5 V; 89.8% after 300 cycles at 4.6 V) and high temperatures (50 °C). This work sheds light on the electrolyte design and interphase engineering for developing practical safe high-energy-density LIBs.
format Online
Article
Text
id pubmed-9891389
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-98913892023-02-07 High-safety and high-efficiency electrolyte design for 4.6 V-class lithium-ion batteries with a non-solvating flame-retardant Chen, Li Nian, Qingshun Ruan, Digen Fan, Jiajia Li, Yecheng Chen, Shunqiang Tan, Lijiang Luo, Xuan Cui, Zhuangzhuang Cheng, Yifeng Li, Changhao Ren, Xiaodi Chem Sci Chemistry Nonflammable electrolytes are critical for the safe operation of high-voltage lithium-ion batteries (LIBs). Although organic phosphates are effective flame retardants, their poor electrochemical stability with a graphite (Gr) anode and Ni-rich cathodes would lead to the deterioration of electrode materials and fast capacity decay. Herein, we develop a safe and high-performance electrolyte formulation for high-voltage (4.6 V-class) LIBs using flame-retarding ethoxy(pentafluoro) cyclotriphosphazene (PFPN) as a non-solvating diluent for the high-concentration carbonate–ether hybrid electrolyte. In contrast to conventional nonflammable additives with restricted dosage, the high level of PFPN (69% mass ratio in our electrolyte design) could significantly increase the electrolyte flash point and protect the favored anion-rich inner solvation sheath because of its non-solvating feature, thus preventing solvent co-intercalation and structural damage to the Gr anode. The nonflammable electrolyte could also form a stable LiF-rich cathode electrolyte interphase (CEI), which enables superior electrochemical performances of Gr‖LiNi(0.8)Mn(0.1)Co(0.1)O(2) (NMC811) full cells at high voltages (∼82.0% capacity retention after 1000 cycles at 4.5 V; 89.8% after 300 cycles at 4.6 V) and high temperatures (50 °C). This work sheds light on the electrolyte design and interphase engineering for developing practical safe high-energy-density LIBs. The Royal Society of Chemistry 2022-12-28 /pmc/articles/PMC9891389/ /pubmed/36756331 http://dx.doi.org/10.1039/d2sc05723a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Chen, Li
Nian, Qingshun
Ruan, Digen
Fan, Jiajia
Li, Yecheng
Chen, Shunqiang
Tan, Lijiang
Luo, Xuan
Cui, Zhuangzhuang
Cheng, Yifeng
Li, Changhao
Ren, Xiaodi
High-safety and high-efficiency electrolyte design for 4.6 V-class lithium-ion batteries with a non-solvating flame-retardant
title High-safety and high-efficiency electrolyte design for 4.6 V-class lithium-ion batteries with a non-solvating flame-retardant
title_full High-safety and high-efficiency electrolyte design for 4.6 V-class lithium-ion batteries with a non-solvating flame-retardant
title_fullStr High-safety and high-efficiency electrolyte design for 4.6 V-class lithium-ion batteries with a non-solvating flame-retardant
title_full_unstemmed High-safety and high-efficiency electrolyte design for 4.6 V-class lithium-ion batteries with a non-solvating flame-retardant
title_short High-safety and high-efficiency electrolyte design for 4.6 V-class lithium-ion batteries with a non-solvating flame-retardant
title_sort high-safety and high-efficiency electrolyte design for 4.6 v-class lithium-ion batteries with a non-solvating flame-retardant
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9891389/
https://www.ncbi.nlm.nih.gov/pubmed/36756331
http://dx.doi.org/10.1039/d2sc05723a
work_keys_str_mv AT chenli highsafetyandhighefficiencyelectrolytedesignfor46vclasslithiumionbatterieswithanonsolvatingflameretardant
AT nianqingshun highsafetyandhighefficiencyelectrolytedesignfor46vclasslithiumionbatterieswithanonsolvatingflameretardant
AT ruandigen highsafetyandhighefficiencyelectrolytedesignfor46vclasslithiumionbatterieswithanonsolvatingflameretardant
AT fanjiajia highsafetyandhighefficiencyelectrolytedesignfor46vclasslithiumionbatterieswithanonsolvatingflameretardant
AT liyecheng highsafetyandhighefficiencyelectrolytedesignfor46vclasslithiumionbatterieswithanonsolvatingflameretardant
AT chenshunqiang highsafetyandhighefficiencyelectrolytedesignfor46vclasslithiumionbatterieswithanonsolvatingflameretardant
AT tanlijiang highsafetyandhighefficiencyelectrolytedesignfor46vclasslithiumionbatterieswithanonsolvatingflameretardant
AT luoxuan highsafetyandhighefficiencyelectrolytedesignfor46vclasslithiumionbatterieswithanonsolvatingflameretardant
AT cuizhuangzhuang highsafetyandhighefficiencyelectrolytedesignfor46vclasslithiumionbatterieswithanonsolvatingflameretardant
AT chengyifeng highsafetyandhighefficiencyelectrolytedesignfor46vclasslithiumionbatterieswithanonsolvatingflameretardant
AT lichanghao highsafetyandhighefficiencyelectrolytedesignfor46vclasslithiumionbatterieswithanonsolvatingflameretardant
AT renxiaodi highsafetyandhighefficiencyelectrolytedesignfor46vclasslithiumionbatterieswithanonsolvatingflameretardant