Ionogels as Polymer Electrolytes for Lithium-Metal Batteries: Comparison of Poly(ethylene glycol) Diacrylate and an Imidazolium-Based Ionic Liquid Crosslinker

被引:16
|
作者
Hoffmann, Maxi [1 ]
Butzelaar, Andreas J. [1 ]
Iacob, Ciprian [1 ,2 ]
Theato, Patrick [1 ,3 ]
Wilhelm, Manfred [1 ]
机构
[1] Karlsruhe Inst Technol KIT, Inst Chem Technol & Polymer Chem ITCP, D-76131 Karlsruhe, Germany
[2] Natl Res & Dev Inst Cryogen & Isotop Technol ICSI, Ramnicu 240050, Valcea, Romania
[3] Karlsruhe Inst Technol KIT, Inst Biol Interfaces IBG 3 3, D-76344 Eggenstein Leopoldshafen, Germany
关键词
ionic liquid; ionogels; broadband dielectric spectroscopy (BDS); solid polymer electrolyte; imidazolium; PEGDA; lithium-metal batteries; POLY(IONIC LIQUID)S; TRANSPORT; CHALLENGES; DYNAMICS; SYSTEMS; NUMBER;
D O I
10.1021/acsapm.2c00075
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We investigated the influence of neutral and charged crosslinkers on the physicochemical properties of ionogels (IGs) as well as their applicability in lithium-metal batteries (LMBs). Specifically, IGs with varying compositions of covalent crosslinker, that is, poly(ethylene glycol) diacrylate (PEGDA; charge neutral) or 1-(p-vinylbenzyl)-3-vinyl imidazolium bis(trifluoromethane sulfonyl)imide ([VBVI]TFSI; charged), ionic liquid monomer, ionic liquid, and lithium bis(trifluoromethane sulfonyl)imide (LiTFSI) were synthesized by photopolymerization. Furthermore, the mechanical properties and ionic conductivities (ICs) of the samples were investigated by a unique setup allowing for simultaneous rheology and broadband dielectric spectroscopy. In general, higher mechanical stability and lower ICs were obtained with increasing content of ionic liquid monomer and crosslinker. Furthermore, VBVI-based IGs showed superior mechanical shear strength (G' = 4 x 10(5) vs 10(5) Pa), while PEGDA-based IGs displayed higher ICs (e.g., for 30/70-V50-20 vs 30/70-P50-20: 0.17 vs 0.25 mS cm(-1) at 25 degrees C). As the IC however includes the diffusion of all ions present, the Li+-transference number (t(Li+)) was determined to judge the actual Li+ conductivity and thus the potential performance in LMBs. Here, t(Li+) was found to be 3-7 times higher for the VBVI-based IGs in comparison to the PEGDA-based ones despite their lower ICs. These results were corroborated by lithium plating/stripping experiments with alternating current densities (CDs). Here, higher CDs for VBVI-based IGs were found in comparison to their PEGDA-based counterpart (0.8 vs 0.1 mA cm(-2)), therefore demonstrating the improved Li+ transport. Finally, the compatibility of the IGs with the lithium metal was investigated by long-term plating/stripping experiments (53 full cycles, 106 h) at 30 degrees C. Our results highlight (1) the significance of t(Li+) measurements in comparison to solely the ICs to judge the performance of IGs in LMBs and reveal (2) the superiority of VBVI-based IGs as a polymer electrolyte compared to conventional PEGDA-based IGs.
引用
收藏
页码:2794 / 2805
页数:12
相关论文
共 50 条
  • [41] Organic ionic plastic crystal enhanced interface compatibility of PEO-based solid polymer electrolytes for lithium-metal batteries
    Fang, Zhiqiang
    Zhao, Ming
    Peng, Yan
    Guan, Shiyou
    SOLID STATE IONICS, 2021, 373
  • [42] Gel Polymer Electrolytes Based on Polymerizable Lithium Salt and Poly(ethylene glycol) for Lithium Battery Applications
    Baik, Ji-Hoon
    Kim, Sangwan
    Hong, Dong Gi
    Lee, Jong-Chan
    ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (33) : 29718 - 29724
  • [43] Styrene-Based Poly(ethylene oxide) Side-Chain Block Copolymers as Solid Polymer Electrolytes for High-Voltage Lithium-Metal Batteries
    Butzelaar, Andreas J.
    Röring, Philipp
    Mach, Tim P.
    Hoffmann, Maxi
    Jeschull, Fabian
    Wilhelm, Manfred
    Winter, Martin
    Brunklaus, Gunther
    Théato, Patrick
    ACS Applied Materials and Interfaces, 2021, 13 (33): : 39257 - 39270
  • [44] Styrene-Based Poly(ethylene oxide) Side-Chain Block Copolymers as Solid Polymer Electrolytes for High-Voltage Lithium-Metal Batteries
    Butzelaar, Andreas J.
    Roring, Philipp
    Mach, Tim P.
    Hoffmann, Maxi
    Jeschull, Fabian
    Wilhelm, Manfred
    Winter, Martin
    Brunklaus, Gunther
    Theato, Patrick
    ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (33) : 39257 - 39270
  • [45] Suppression of Lithium Dendrite Growth Using Cross-Linked Polyethylene/Poly(ethylene oxide) Electrolytes: A New Approach for Practical Lithium-Metal Polymer Batteries
    Khurana, Rachna
    Schaefer, Jennifer L.
    Archer, Lynden A.
    Coates, Geoffrey W.
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2014, 136 (20) : 7395 - 7402
  • [46] Synthesis of Pyrrolidinium-Based Poly(ionic liquid) Electrolytes with Poly(ethylene glycol) Side Chains
    Doebbelin, Markus
    Azcune, Itxaso
    Bedu, Melanie
    Ruiz de Luzuriaga, Alaitz
    Genua, Aratz
    Jovanovski, Vasko
    Cabanero, German
    Odriozola, Ibon
    CHEMISTRY OF MATERIALS, 2012, 24 (09) : 1583 - 1590
  • [47] Imidazolium-Based Poly(ionic liquid)s with Poly(ethylene oxide) Main Chains: Effects of Spacer and Tail Structures on Ionic Conductivity
    Ikeda, Taichi
    Moriyama, Satoshi
    Kim, Jedeok
    JOURNAL OF POLYMER SCIENCE PART A-POLYMER CHEMISTRY, 2016, 54 (18) : 2896 - 2906
  • [48] The effects of C2-methylation of imidazolium-based ionic liquid electrolytes on the lithium-ion transport
    Gu, Jiankang
    Jia, Yunzhe
    Ren, Xiaozhe
    Li, Shu
    Yan, Tianying
    JOURNAL OF MOLECULAR LIQUIDS, 2023, 369
  • [49] An ionic liquid enhanced gel polymer electrolyte for high performance lithium-metal batteries based on sulfurized polyacrylonitrile cathode
    Gao, Guixia
    Wang, Jin
    Zhang, Xuezhi
    Li, Huilan
    Wang, Lina
    Liu, Tianxi
    COMPOSITES COMMUNICATIONS, 2022, 31
  • [50] Polyethylene Glycol Dimethyl Ether-Plasticized Poly(vinylidene difluoride)-Based Polymer Electrolytes Inhibit Dendrite Growth and Enable Stable Cycling for Lithium-Metal Batteries
    Tsao, Chih-Hao
    Wang, Chen-Yu
    Trevisanello, Enrico
    Richter, Felix H.
    Kuo, Daniel
    Janek, Juergen
    Chang, Chien-Hsiang
    Teng, Hsisheng
    Kuo, Ping-Lin
    ACS APPLIED ENERGY MATERIALS, 2023, 6 (11) : 5662 - 5670