Literature DB >> 25108613

Stable lithium electrodeposition in liquid and nanoporous solid electrolytes.

Yingying Lu1, Zhengyuan Tu2, Lynden A Archer3.   

Abstract

Rechargeable lithium, sodium and aluminium metal-based batteries are among the most versatile platforms for high-energy, cost-effective electrochemical energy storage. Non-uniform metal deposition and dendrite formation on the negative electrode during repeated cycles of charge and discharge are major hurdles to commercialization of energy-storage devices based on each of these chemistries. A long-held view is that unstable electrodeposition is a consequence of inherent characteristics of these metals and their inability to form uniform electrodeposits on surfaces with inevitable defects. We report on electrodeposition of lithium in simple liquid electrolytes and in nanoporous solids infused with liquid electrolytes. We find that simple liquid electrolytes reinforced with halogenated salt blends exhibit stable long-term cycling at room temperature, often with no signs of deposition instabilities over hundreds of cycles of charge and discharge and thousands of operating hours. We rationalize these observations with the help of surface energy data for the electrolyte/lithium interface and impedance analysis of the interface during different stages of cell operation. Our findings provide support for an important recent theoretical prediction that the surface mobility of lithium is significantly enhanced in the presence of lithium halide salts. Our results also show that a high electrolyte modulus is unnecessary for stable electrodeposition of lithium.

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Year:  2014        PMID: 25108613     DOI: 10.1038/nmat4041

Source DB:  PubMed          Journal:  Nat Mater        ISSN: 1476-1122            Impact factor:   43.841


  18 in total

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2.  In situ NMR observation of the formation of metallic lithium microstructures in lithium batteries.

Authors:  Rangeet Bhattacharyya; Baris Key; Hailong Chen; Adam S Best; Anthony F Hollenkamp; Clare P Grey
Journal:  Nat Mater       Date:  2010-05-16       Impact factor: 43.841

3.  Ionic-liquid-tethered nanoparticles: hybrid electrolytes.

Authors:  Surya S Moganty; N Jayaprakash; Jennifer L Nugent; J Shen; Lynden A Archer
Journal:  Angew Chem Int Ed Engl       Date:  2010-11-22       Impact factor: 15.336

4.  Nonaqueous liquid electrolytes for lithium-based rechargeable batteries.

Authors:  Kang Xu
Journal:  Chem Rev       Date:  2004-10       Impact factor: 60.622

5.  Nanostructured materials for advanced energy conversion and storage devices.

Authors:  Antonino Salvatore Aricò; Peter Bruce; Bruno Scrosati; Jean-Marie Tarascon; Walter van Schalkwijk
Journal:  Nat Mater       Date:  2005-05       Impact factor: 43.841

6.  Building better batteries.

Authors:  M Armand; J-M Tarascon
Journal:  Nature       Date:  2008-02-07       Impact factor: 49.962

7.  Electrochemical aspects of the generation of ramified metallic electrodeposits.

Authors: 
Journal:  Phys Rev A       Date:  1990-12-15       Impact factor: 3.140

8.  Porous hollow carbon@sulfur composites for high-power lithium-sulfur batteries.

Authors:  N Jayaprakash; J Shen; Surya S Moganty; A Corona; Lynden A Archer
Journal:  Angew Chem Int Ed Engl       Date:  2011-05-17       Impact factor: 15.336

9.  Ionic liquid-nanoparticle hybrid electrolytes and their application in secondary lithium-metal batteries.

Authors:  Yingying Lu; Shyamal K Das; Surya S Moganty; Lynden A Archer
Journal:  Adv Mater       Date:  2012-07-12       Impact factor: 30.849

10.  Ionic-liquid-nanoparticle hybrid electrolytes: applications in lithium metal batteries.

Authors:  Yingying Lu; Kevin Korf; Yu Kambe; Zhengyuan Tu; Lynden A Archer
Journal:  Angew Chem Int Ed Engl       Date:  2013-11-26       Impact factor: 15.336

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  88 in total

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3.  Elastic and Li-ion-percolating hybrid membrane stabilizes Li metal plating.

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Journal:  Proc Natl Acad Sci U S A       Date:  2018-11-19       Impact factor: 11.205

4.  Composite lithium metal anode by melt infusion of lithium into a 3D conducting scaffold with lithiophilic coating.

Authors:  Zheng Liang; Dingchang Lin; Jie Zhao; Zhenda Lu; Yayuan Liu; Chong Liu; Yingying Lu; Haotian Wang; Kai Yan; Xinyong Tao; Yi Cui
Journal:  Proc Natl Acad Sci U S A       Date:  2016-02-29       Impact factor: 11.205

5.  Design rules for liquid crystalline electrolytes for enabling dendrite-free lithium metal batteries.

Authors:  Zeeshan Ahmad; Zijian Hong; Venkatasubramanian Viswanathan
Journal:  Proc Natl Acad Sci U S A       Date:  2020-10-09       Impact factor: 11.205

6.  Design principles for self-forming interfaces enabling stable lithium-metal anodes.

Authors:  Yingying Zhu; Vikram Pande; Linsen Li; Bohua Wen; Menghsuan Sam Pan; David Wang; Zi-Feng Ma; Venkatasubramanian Viswanathan; Yet-Ming Chiang
Journal:  Proc Natl Acad Sci U S A       Date:  2020-10-15       Impact factor: 11.205

7.  The intrinsic behavior of lithium fluoride in solid electrolyte interphases on lithium.

Authors:  Mingfu He; Rui Guo; Gustavo M Hobold; Haining Gao; Betar M Gallant
Journal:  Proc Natl Acad Sci U S A       Date:  2019-12-17       Impact factor: 11.205

8.  Stable metal anodes enabled by a labile organic molecule bonded to a reduced graphene oxide aerogel.

Authors:  Yue Gao; Daiwei Wang; Yun Kyung Shin; Zhifei Yan; Zhuo Han; Ke Wang; Md Jamil Hossain; Shuling Shen; Atif AlZahrani; Adri C T van Duin; Thomas E Mallouk; Donghai Wang
Journal:  Proc Natl Acad Sci U S A       Date:  2020-11-16       Impact factor: 11.205

9.  High-capacity rechargeable batteries based on deeply cyclable lithium metal anodes.

Authors:  Qiuwei Shi; Yiren Zhong; Min Wu; Hongzhi Wang; Hailiang Wang
Journal:  Proc Natl Acad Sci U S A       Date:  2018-05-14       Impact factor: 11.205

10.  Layered reduced graphene oxide with nanoscale interlayer gaps as a stable host for lithium metal anodes.

Authors:  Dingchang Lin; Yayuan Liu; Zheng Liang; Hyun-Wook Lee; Jie Sun; Haotian Wang; Kai Yan; Jin Xie; Yi Cui
Journal:  Nat Nanotechnol       Date:  2016-03-21       Impact factor: 39.213

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