Pore filled solid electrolytes with high ionic conduction and electrochemical stability for lithium sulfur battery

Anh Le Mong , Yeonho Ahn , Rangaswamy Puttaswamy , Dukjoon Kim

Energy Materials ›› 2023, Vol. 3 ›› Issue (4) : 300035

PDF
Energy Materials ›› 2023, Vol. 3 ›› Issue (4) :300035 DOI: 10.20517/energymater.2023.20
Article

Pore filled solid electrolytes with high ionic conduction and electrochemical stability for lithium sulfur battery

Author information +
History +
PDF

Abstract

High lithium (Li)-ion conductive solid electrolytes with mechanical stability are quite important in the development of long-term safe and high-performance solid-state Li-sulfur batteries (LSBs). Accordingly, we prepared a pore-filling solid electrolyte (PFSE) by introducing poly(ethylene glycol) double-grafted (poly(arylene ether sulfone) (PAES-g-2PEG), ionic liquid (IL), and ethylene carbonate (EC) into a porous polypropylene/polyethylene/polypropylene (PP/PE/PP) substrate. While the PP/PE/PP substrate provides the membrane with the mechanical strength, the PAES-g-2PEG filler provides high Li-ion conductivity due to the facile ion conduction pathway formation via percolation in the presence of IL and EC. This synergistic effect allowed the prepared PFSE membranes to exhibit both high mechanical strength of 200 MPa, thermal stability above 150 °C, and high ion conductivity of 0.604 mS cm-1 with a Li-transfer number of 0.41. Moreover, PFSE membranes also achieved a large electrochemical potential window of 4.60 V and high cyclic stability after 500 h of Li-stripping/plating. The LSB cell based on a PFSE membrane showed excellent electrochemical performance with preserving 95% of initial capacity after 200 cycles at a 0.2 C-rate.

Keywords

Sulfur battery / solid electrolyte / pore-filling / ion conductivity / electrochemical stability

Cite this article

Download citation ▾
Anh Le Mong, Yeonho Ahn, Rangaswamy Puttaswamy, Dukjoon Kim. Pore filled solid electrolytes with high ionic conduction and electrochemical stability for lithium sulfur battery. Energy Materials, 2023, 3(4): 300035 DOI:10.20517/energymater.2023.20

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Crawford AJ,Kintner-meyer MC.Lifecycle comparison of selected Li-ion battery chemistries under grid and electric vehicle duty cycle combinations.J Power Sources2018;380:185-93

[2]

Bi Z.Solidification for solid-state lithium batteries with high energy density and long cycle life.Energy Mater2022;2:200011

[3]

Shin H,Gupta A,Manthiram A.Recent progress in high donor electrolytes for lithium-sulfur batteries.Adv Energy Mater2020;10:2001456

[4]

Heidari AA.Recent development of polyolefin-based microporous separators for Li-Ion batteries: a review.Chem Rec2020;20:570-95

[5]

Duan J,Dai H.Building safe lithium-ion batteries for electric vehicles: a review.Electrochem Energy Rev2020;3:1-42

[6]

Le Mong A.Acceleration of selective lithium ion transport of PAES-g-2PEG self-assembled flexible solid-state electrolytes for lithium secondary batteries.Energy Stor Mater2022;47:394-407

[7]

Lucero M,Feng Z.In situ characterizations of solid-solid interfaces in solid-state batteries using synchrotron X-ray techniques.Carbon Energy2021;3:762-83

[8]

Li S,Zheng J,Song H.Inhibition of polysulfide shuttles in Li-S batteries: modified separators and solid-state electrolytes.Adv Energy Mater2021;11:2000779

[9]

Samson AJ,Bag S.A bird’s-eye view of Li-stuffed garnet-type Li7La3Zr2O12 ceramic electrolytes for advanced all-solid-state Li batteries.Energy Environ Sci2019;12:2957-75

[10]

Thangadurai V,Pinzaru D.Garnet-type solid-state fast Li ion conductors for Li batteries: critical review.Chem Soc Rev2014;43:4714-27

[11]

Ye L.A dynamic stability design strategy for lithium metal solid state batteries.Nature2021;593:218-22

[12]

Lewis JA,Boebinger MG.Interphase morphology between a solid-state electrolyte and lithium controls cell failure.ACS Energy Lett2019;4:591-9

[13]

Xie H,Fu KK.Flexible, scalable, and highly conductive garnet-polymer solid electrolyte templated by bacterial cellulose.Adv Energy Mater2018;8:1703474

[14]

Xu R,Zhang S,Wang X.Interfacial challenges and progress for inorganic all-solid-state lithium batteries.Electrochimica Acta2018;284:177-87

[15]

Plylahan N,Lim D,Johansson P.Ionic liquid and hybrid ionic liquid/organic electrolytes for high temperature lithium-ion battery application.Electrochimica Acta2016;216:24-34

[16]

Montanino M,Carewska M.Mixed organic compound-ionic liquid electrolytes for lithium battery electrolyte systems.J Power Sources2014;269:608-15

[17]

Bi S,Chen M.Molecular understanding of charge storage and charging dynamics in supercapacitors with MOF electrodes and ionic liquid electrolytes.Nat Mater2020;19:552-8

[18]

Francis CFJ,Best AS.Lithium-ion battery separators for ionic-liquid electrolytes: a review.Adv Mater2020;32:e1904205

[19]

Jung HY,Jo G.Modulating ion transport and self-assembly of polymer electrolytes via end-group chemistry.Macromolecules2017;50:3224-33

[20]

Li C,Chen L,Wang Z.Reducing the crystallinity of PEO-based composite electrolyte for high performance lithium batteries.Compos Part B: Eng2022;234:109729

[21]

Chopade SA,Li Z,Hillmyer MA.Robust polymer electrolyte membranes with high ambient-temperature lithium-ion conductivity via polymerization-induced microphase separation.ACS Appl Mater Interfaces2017;9:14561-5

[22]

Le Mong A,Jeon H,Xie XL.Tough and flexible, super ion-conductive electrolyte membranes for lithium-based secondary battery applications.Adv Funct Mater2021;31:2008586

[23]

Li S,Shen L.Progress and perspective of ceramic/polymer composite solid electrolytes for lithium batteries.Adv Sci2020;7:1903088 PMCID:PMC7055568

[24]

Li L,Wang J.Asymmetric gel polymer electrolyte with high lithium ion conductivity for dendrite-free lithium metal batteries.J Mater Chem A2020;8:8033-40

[25]

Li Z,Deng Y.3D porous PTFE membrane filled with PEO-based electrolyte for all solid-state lithium-sulfur batteries.Rare Met2022;41:2834-43

[26]

Hu J,Zhang B,Fan L.Porous film host-derived 3D composite polymer electrolyte for high-voltage solid state lithium batteries.Energy Stor Mater2020;26:283-9

[27]

Seo Y,Park M.Solid polymer electrolyte supported by porous polymer membrane for all-solid-state lithium batteries.J Membr Sci2020;603:117995

[28]

Ahn Y.Ultra-low vanadium ion permeable electrolyte membrane for vanadium redox flow battery by pore filling of PTFE substrate.Energy Stor Mater2020;31:105-14

[29]

Jeon H.Simultaneous establishment of high conductivity and mechanical stability via pore-filling of porous PTFE substrate with poly(ethylene glycol) and ionic liquid for lithium secondary battery.J Membr Sci2021;624:119029

[30]

Park G.Porous PTFE reinforced SPEEK proton exchange membranes for enhanced mechanical, dimensional, and electrochemical stability.Polymer2021;218:123506

[31]

Ahn Y.High energy efficiency and stability of vanadium redox flow battery using pore-filled anion exchange membranes with ultra-low V4+ permeation.J Ind Eng Chem2022;110:395-404

[32]

Zhang T,Shen B,Yao H.Recent advances on biopolymer fiber based membranes for lithium-ion battery separators.Compos Commun2019;14:7-14

[33]

Bhatt MD,Cho K.Interaction of Li+ ions with ethylene carbonate (EC): density functional theory calculations.Appl Surf Sci2010;257:1463-8

[34]

Bhatt MD,Cho K.Conduction of Li+ cations in ethylene carbonate (EC) and propylene carbonate (PC): comparative studies using density functional theory.J Solid State Electrochem2012;16:435-41

[35]

Evans J,Bruce PG.Electrochemical measurement of transference numbers in polymer electrolytes.Polymer1987;28:2324-8

PDF

75

Accesses

0

Citation

Detail

Sections
Recommended

/