Literature DB >> 31927889

Fast Li+ Conduction Mechanism and Interfacial Chemistry of a NASICON/Polymer Composite Electrolyte.

Nan Wu1,2, Po-Hsiu Chien3,4, Yutao Li1, Andrei Dolocan1, Henghui Xu1, Biyi Xu1, Nicholas S Grundish1, Haibo Jin2, Yan-Yan Hu3,4, John B Goodenough1.   

Abstract

The unclear Li+ local environment and Li+ conduction mechanism in solid polymer electrolytes, especially in a ceramic/polymer composite electrolyte, hinder the design and development of a new composite electrolyte. Moreover, both the low room-temperature Li+ conductivity and large interfacial resistance with a metallic lithium anode of a polymer membrane limit its application below a relatively high temperature. Here we have identified the Li+ distribution and Li+ transport mechanism in a composite polymer electrolyte by investigating a new solid poly(ethylene oxide) (PEO)-based NASICON-LiZr2(PO4)3 composite with 7Li relaxation time and 6Li → 7Li trace-exchange NMR measurements. The Li+ population of the two local environments in the composite electrolytes depends on the Li-salt concentration and the amount of ceramic filler. A composite electrolyte with a [EO]/[Li+] ratio n = 10 and 25 wt % LZP filler has a high Li+ conductivity of 1.2 × 10-4 S cm-1 at 30 °C and a low activation energy owing to the additional Li+ in the mobile A2 environment. Moreover, an in situ formed solid electrolyte interphase layer from the reaction between LiZr2(PO4)3 and a metallic lithium anode stabilized the Li/composite-electrolyte interface and reduced the interfacial resistance, which provided a symmetric Li/Li cell and all-solid-state Li/LiFePO4 and Li/LiNi0.8Co0.1Mn0.1O2 cells a good cycling performance at 40 °C.

Entities:  

Year:  2020        PMID: 31927889     DOI: 10.1021/jacs.9b12233

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  5 in total

1.  Application of polyamide 6 microfiber non-woven fabrics in the large-scale production of all-solid-state lithium metal batteries.

Authors:  Lu Gao; Bushra Sarmad; Jianxin Li; Bowen Cheng; Weimin Kang; Nanping Deng
Journal:  J Power Sources       Date:  2020-08-23       Impact factor: 9.127

2.  Lattice Dynamics in the NASICON NaZr2(PO4)3 Solid Electrolyte from Temperature-Dependent Neutron Diffraction, NMR, and Ab Initio Computational Studies.

Authors:  Emily E Morgan; Hayden A Evans; Kartik Pilar; Craig M Brown; Raphaële J Clément; Ryo Maezono; Ram Seshadri; Bartomeu Monserrat; Anthony K Cheetham
Journal:  Chem Mater       Date:  2022-04-28       Impact factor: 10.508

3.  In Situ Construction a Stable Protective Layer in Polymer Electrolyte for Ultralong Lifespan Solid-State Lithium Metal Batteries.

Authors:  Dechao Zhang; Zhengbo Liu; Yiwen Wu; Shaomin Ji; Zhanxiang Yuan; Jun Liu; Min Zhu
Journal:  Adv Sci (Weinh)       Date:  2022-02-22       Impact factor: 17.521

4.  Percolated Sulfide in Salt-Concentrated Polymer Matrices Extricating High-Voltage All-Solid-State Lithium-metal Batteries.

Authors:  Feng Jiang; Yantao Wang; Jiangwei Ju; Qian Zhou; Longfei Cui; Jinzhi Wang; Guoxi Zhu; Huancheng Miao; Xinhong Zhou; Guanglei Cui
Journal:  Adv Sci (Weinh)       Date:  2022-06-24       Impact factor: 17.521

5.  Rhombohedral Li1+xYxZr2-x(PO4)3 Solid Electrolyte Prepared by Hot-Pressing for All-Solid-State Li-Metal Batteries.

Authors:  Qinghui Li; Chang Xu; Bing Huang; Xin Yin
Journal:  Materials (Basel)       Date:  2020-04-06       Impact factor: 3.623

  5 in total

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