Pathway to High Rate Capability in Interconnected Composite Electrolytes: A Case Study with a Single-Ion-Conducting Polymer

被引:0
|
作者
Sahore, Ritu [1 ]
Owensby, Kyra D. [1 ,2 ]
Armstrong, Beth L. [3 ]
Ock, Jiyoung [1 ]
Lehmann, Michelle L. [1 ]
Ullman, Andrew M. [1 ]
Kalnaus, Sergiy [4 ]
Chen, Xi Chelsea [1 ]
机构
[1] Oak Ridge Natl Lab, Chem Sci Div, Oak Ridge, TN 37831 USA
[2] Univ Tennessee, Bredesen Ctr Interdisciplinary Res & Grad Educ, Knoxville, TN 37996 USA
[3] Oak Ridge Natl Lab, Mat Sci & Technol Div, Oak Ridge, TN 37831 USA
[4] Oak Ridge Natl Lab, Computat Sci & Engn Div, Oak Ridge, TN 37831 USA
来源
ACS APPLIED ENERGY MATERIALS | 2024年
关键词
solid-state battery; composite electrolyte; ceramic electrolyte; polymer/ceramic interface; single-ion conducting polymer; SOLID-STATE; LITHIUM; TRANSPORT; BATTERIES; NETWORKS;
D O I
10.1021/acsaem.4c01642
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In a three-dimensional interconnected polymer/ceramic composite electrolyte (3D composite), both the polymer and ceramic electrolyte phases are individually connected with a polymer-rich surface layer to provide conformal contact with the electrodes. This work investigates how the transference number of the polymer phase affects the electrochemical properties of the 3D composite. Here, we fabricate a 3D composite using a "single-ion" conducting polymer electrolyte (PE), Li1+x+y Al x Ti2-x Si y P3-y O12 (LICGC) ceramic, and compare its electrochemical properties with the neat polymer, and with a 3D composite made with a dual-ion-conducting PE (we reported previously). Our results reveal that changing the polymer phase from a dual-ion-conducting PE to a single-ion-conducting PE results in a 9-fold increase in the limiting current density, although the interfacial impedance between the polymer and LICGC ceramic remains high (and contributes significantly to the total impedance of the 3D composite). The limiting current density of the 3D composite is dictated by the PE and minimally affected by the ceramic scaffold. The ceramic scaffold, however, helps to ease the concentration gradient buildup within the PE and moderately improves the overall transference number. The LICGC scaffold does not provide any additional Li dendrite resistance due to its high reactivity with Li.
引用
收藏
页码:11714 / 11723
页数:10
相关论文
共 50 条
  • [21] Single-Ion Conducting Polymer Nanoparticles as Functional Fillers for Solid Electrolytes in Lithium Metal Batteries
    Porcarelli, Luca
    Sutton, Preston
    Bocharova, Vera
    Aguirresarobe, Robert H.
    Zhu, Haijin
    Goujon, Nicolas
    Leiza, Jose R.
    Sokolov, Alexei
    Forsyth, Maria
    Mecerreyes, David
    ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (45) : 54354 - 54362
  • [22] A Composite of Hierarchical Porous MOFs and Halloysite Nanotubes as Single-Ion-Conducting Electrolyte Toward High-Performance Solid-State Lithium-Ion Batteries
    Tao, Fencheng
    Wang, Xin
    Jin, Sheng
    Tian, Li
    Liu, Zixin
    Kang, Xiaomin
    Liu, Zhiliang
    ADVANCED MATERIALS, 2023, 35 (29)
  • [23] Single-ion polymer/LLZO hybrid electrolytes with high lithium conductivity
    Lechartier, Marine
    Porcarelli, Luca
    Zhu, Haijin
    Forsyth, Maria
    Gueguen, Aurelie
    Castro, Laurent
    Mecerreyes, David
    MATERIALS ADVANCES, 2022, 3 (02): : 1139 - 1151
  • [24] Superior polymer backbone with poly(arylene ether) over polyamide for single ion conducting polymer electrolytes
    Chen, Yazhou
    Ke, Hanzhong
    Zeng, Danli
    Zhang, Yunfeng
    Sun, Yubao
    Cheng, Hansong
    JOURNAL OF MEMBRANE SCIENCE, 2017, 525 : 349 - 358
  • [25] Thermally Reprocessable Self-Healing Single-Ion Conducting Polymer Electrolytes
    Lee, Sangho
    Song, Juhwan
    Cho, Jinhan
    Son, Jeong Gon
    Kim, Tae Ann
    ACS APPLIED POLYMER MATERIALS, 2023, 5 (09) : 7433 - 7442
  • [26] Chain length dependence of structural and transport properties of single lithium-ion conducting polymer electrolytes: A molecular dynamics simulation study
    Samadi, Zeynab
    Amjad-Iranagh, Sepideh
    Rashidi, Fariborz
    Choobar, Behnam Ghalami
    Modarress, Hamid
    SOLID STATE IONICS, 2023, 398
  • [27] Improved Lithium Ionic Conductivity in Composite Polymer Electrolytes with Oxide-Ion Conducting Nanowires
    Liu, Wei
    Lin, Dingchang
    Sun, Jie
    Zhou, Guangmin
    Cui, Yi
    ACS NANO, 2016, 10 (12) : 11407 - 11413
  • [28] Synthesis and ion conduction mechanism on hot-pressed sodium ion conducting nano composite polymer electrolytes
    Chandra, Angesh
    Chandra, Archana
    Thakur, K.
    ARABIAN JOURNAL OF CHEMISTRY, 2016, 9 (03) : 400 - 407
  • [29] Small Groups, Big Impact: Eliminating Li+ Traps in Single-Ion Conducting Polymer Electrolytes
    Borzutzki, Kristina
    Dong, Dengpan
    Woelke, Christian
    Kruteva, Margarita
    Stellhorn, Annika
    Winter, Martin
    Bedrov, Dmitry
    Brunklaus, Gunther
    ISCIENCE, 2020, 23 (08)
  • [30] Elastic Single-Ion Conducting Polymer Electrolytes: Toward a Versatile Approach for Intrinsically Stretchable Functional Polymers
    Cao, Peng-Fei
    Li, Bingrui
    Yang, Guang
    Zhao, Sheng
    Townsend, Jacob
    Xing, Kunyue
    Qiang, Zhe
    Vogiatzis, Konstantinos D.
    Sokolov, Alexei P.
    Nanda, Jagjit
    Saito, Tomonori
    MACROMOLECULES, 2020, 53 (09) : 3591 - 3601