Literature DB >> 32015545

Li metal deposition and stripping in a solid-state battery via Coble creep.

Yuming Chen1,2,3, Ziqiang Wang1,2, Xiaoyan Li1,2,3,4, Xiahui Yao1,2, Chao Wang1,2, Yutao Li5,6, Weijiang Xue1,2, Daiwei Yu7, So Yeon Kim1,2, Fei Yang1,2, Akihiro Kushima8, Guoge Zhang4, Haitao Huang4, Nan Wu5,6, Yiu-Wing Mai9, John B Goodenough5,6, Ju Li10,11.   

Abstract

Solid-state lithium metal batteries require accommodation of electrochemically generated mechanical stress inside the lithium: this stress can be1,2 up to 1 gigapascal for an overpotential of 135 millivolts. Maintaining the mechanical and electrochemical stability of the solid structure despite physical contact with moving corrosive lithium metal is a demanding requirement. Using in situ transmission electron microscopy, we investigated the deposition and stripping of metallic lithium or sodium held within a large number of parallel hollow tubules made of a mixed ionic-electronic conductor (MIEC). Here we show that these alkali metals-as single crystals-can grow out of and retract inside the tubules via mainly diffusional Coble creep along the MIEC/metal phase boundary. Unlike solid electrolytes, many MIECs are electrochemically stable in contact with lithium (that is, there is a direct tie-line to metallic lithium on the equilibrium phase diagram), so this Coble creep mechanism can effectively relieve stress, maintain electronic and ionic contacts, eliminate solid-electrolyte interphase debris, and allow the reversible deposition/stripping of lithium across a distance of 10 micrometres for 100 cycles. A centimetre-wide full cell-consisting of approximately 1010 MIEC cylinders/solid electrolyte/LiFePO4-shows a high capacity of about 164 milliampere hours per gram of LiFePO4, and almost no degradation for over 50 cycles, starting with a 1× excess of Li. Modelling shows that the design is insensitive to MIEC material choice with channels about 100 nanometres wide and 10-100 micrometres deep. The behaviour of lithium metal within the MIEC channels suggests that the chemical and mechanical stability issues with the metal-electrolyte interface in solid-state lithium metal batteries can be overcome using this architecture.

Entities:  

Year:  2020        PMID: 32015545     DOI: 10.1038/s41586-020-1972-y

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  8 in total

1.  A highly stable lithium metal anode enabled by Ag nanoparticle-embedded nitrogen-doped carbon macroporous fibers.

Authors:  Yongjin Fang; Song Lin Zhang; Zhi-Peng Wu; Deyan Luan; Xiong Wen David Lou
Journal:  Sci Adv       Date:  2021-05-21       Impact factor: 14.136

Review 2.  Review on Modeling for Chemo-mechanical Behavior at Interfaces of All-Solid-State Lithium-Ion Batteries and Beyond.

Authors:  Jiayu Tian; Zongli Chen; Ying Zhao
Journal:  ACS Omega       Date:  2022-02-15

3.  Atomic Sn-enabled high-utilization, large-capacity, and long-life Na anode.

Authors:  Fei Xu; Changzhen Qu; Qiongqiong Lu; Jiashen Meng; Xiuhai Zhang; Xiaosa Xu; Yuqian Qiu; Baichuan Ding; Jiaying Yang; Fengren Cao; Penghui Yang; Guangshen Jiang; Stefan Kaskel; Jingyuan Ma; Liang Li; Xingcai Zhang; Hongqiang Wang
Journal:  Sci Adv       Date:  2022-05-11       Impact factor: 14.957

4.  A Two-Parameter Space to Tune Solid Electrolytes for Lithium Dendrite Constriction.

Authors:  Yichao Wang; Luhan Ye; Xi Chen; Xin Li
Journal:  JACS Au       Date:  2022-03-29

5.  Enabling Long Cycle Life and High Rate Iron Difluoride Based Lithium Batteries by In Situ Cathode Surface Modification.

Authors:  Yong Su; Jingzhao Chen; Hui Li; Haiming Sun; Tingting Yang; Qiunan Liu; Satoshi Ichikawa; Xuedong Zhang; Dingding Zhu; Jun Zhao; Lin Geng; Baiyu Guo; Congcong Du; Qiushi Dai; Zaifa Wang; Xiaomei Li; Hongjun Ye; Yunna Guo; Yanshuai Li; Jingming Yao; Jitong Yan; Yang Luo; Hailong Qiu; Yongfu Tang; Liqiang Zhang; Qiao Huang; Jianyu Huang
Journal:  Adv Sci (Weinh)       Date:  2022-05-14       Impact factor: 17.521

6.  Visualizing the failure of solid electrolyte under GPa-level interface stress induced by lithium eruption.

Authors:  Haowen Gao; Xin Ai; Hongchun Wang; Wangqin Li; Ping Wei; Yong Cheng; Siwei Gui; Hui Yang; Yong Yang; Ming-Sheng Wang
Journal:  Nat Commun       Date:  2022-08-27       Impact factor: 17.694

7.  Interconnected NiCo2O4 nanosheet arrays grown on carbon cloth as a host, adsorber and catalyst for sulfur species enabling high-performance Li-S batteries.

Authors:  Junli Zhou; Xiaolan Yang; Yajun Zhang; Jinzhu Jia; Xinjian He; Lin Yu; Yuede Pan; Jingwen Liao; Ming Sun; Jun He
Journal:  Nanoscale Adv       Date:  2021-02-02

8.  Designing 3D Anode Based on Pore-Size-Dependent Li Deposition Behavior for Reversible Li-Free All-Solid-State Batteries.

Authors:  Se Hwan Park; Dayoung Jun; Gyu Hyeon Lee; Seong Gyu Lee; Ji Eun Jung; Ki Yoon Bae; Samick Son; Yun Jung Lee
Journal:  Adv Sci (Weinh)       Date:  2022-08-10       Impact factor: 17.521

  8 in total

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