Electronic paddle-wheels in a solid-state electrolyte

被引:0
|
作者
Harender S. Dhattarwal
Rahul Somni
Richard C. Remsing
机构
[1] Rutgers University,Department of Chemistry and Chemical Biology
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Solid-state superionic conductors (SSICs) are promising alternatives to liquid electrolytes in batteries and other energy storage technologies. The rational design of SSICs and ultimately their deployment in battery technologies is hindered by the lack of a thorough understanding of their ion conduction mechanisms. In SSICs containing molecular ions, rotational dynamics couple with translational diffusion to create a paddle-wheel effect that facilitates conduction. The paddle-wheel mechanism explains many important features of molecular SSICs, but an explanation for ion conduction and anharmonic lattice dynamics in SSICs composed of monatomic ions is still needed. We predict that ion conduction in the classic SSIC AgI involves electronic paddle-wheels, rotational motion of localized electron pairs that couples to and facilitates ion diffusion. The electronic paddle-wheel mechanism creates a universal perspective for understanding ion conductivity in both monatomic and molecular SSICs that will create design principles for engineering solid-state electrolytes from the electronic level up to the macroscale.
引用
收藏
相关论文
共 50 条
  • [31] SOLID-STATE PERSPECTIVES OF THE PHOTOELECTROCHEMISTRY OF SEMICONDUCTOR ELECTROLYTE JUNCTIONS
    WILLIAMS, F
    NOZIK, AJ
    NATURE, 1984, 312 (5989) : 21 - 27
  • [32] Advances in Electrochemical Stability of Sulfide Solid-state Electrolyte
    Liu L.
    Wu F.
    Li H.
    Chen L.
    Kuei Suan Jen Hsueh Pao/Journal of the Chinese Ceramic Society, 2019, 47 (10): : 1367 - 1385
  • [33] Visualizing Chemomechanical Degradation of a Solid-State Battery Electrolyte
    Tippens, Jared
    Miers, John C.
    Afshar, Arman
    Lewis, John A.
    Cortes, Francisco Javier Quintero
    Qiao, Haipeng
    Marchese, Thomas S.
    Di Leo, Claudio V.
    Saldana, Christopher
    McDowell, Matthew T.
    ACS ENERGY LETTERS, 2019, 4 (06) : 1475 - 1483
  • [34] A zwitterionic gel electrolyte for efficient solid-state supercapacitors
    Xu Peng
    Huili Liu
    Qin Yin
    Junchi Wu
    Pengzuo Chen
    Guangzhao Zhang
    Guangming Liu
    Changzheng Wu
    Yi Xie
    Nature Communications, 7
  • [35] Electrolyte and interface engineering for solid-state sodium batteries
    Li, Fupeng
    Hou, Minjie
    Zhao, Lanqing
    Zhang, Da
    Yang, Bin
    Liang, Feng
    ENERGY STORAGE MATERIALS, 2024, 65
  • [36] Solid-State Electrolyte Design for Lithium Dendrite Suppression
    Ji, Xiao
    Hou, Singyuk
    Wang, Pengfei
    He, Xinzi
    Piao, Nan
    Chen, Ji
    Fan, Xiulin
    Wang, Chunsheng
    ADVANCED MATERIALS, 2020, 32 (46)
  • [37] SOLID-STATE CELL WITH SILVER-IODIDE AS ELECTROLYTE
    BARANEK, BI
    FAIVOVICH, RD
    PERISSINOTTI, L
    FRANCO, JI
    ANALES DE LA ASOCIACION QUIMICA ARGENTINA, 1978, 66 (01): : 47 - 56
  • [38] Solid-state electrolyte considerations for electric vehicle batteries
    Shen, Hao
    Yi, Eongyu
    Cheng, Lei
    Amores, Marco
    Chen, Guoying
    Sofie, Stephen W.
    Doeff, Marca M.
    SUSTAINABLE ENERGY & FUELS, 2019, 3 (07) : 1647 - 1659
  • [39] Electrolyte and Interface Engineering for Solid-State Sodium Batteries
    Lu, Yong
    Li, Lin
    Zhang, Qiu
    Niu, Zhiqiang
    Chen, Jun
    JOULE, 2018, 2 (09) : 1747 - 1770
  • [40] Advances in Inorganic Solid-State Electrolyte/Li Interface
    Chen, Yi
    Qian, Ji
    Li, Li
    Wu, Feng
    Chen, Renjie
    CHEMISTRY-A EUROPEAN JOURNAL, 2024, 30 (05)