Literature DB >> 23631402

(De)lithiation mechanism of Li/SeS(x) (x = 0-7) batteries determined by in situ synchrotron X-ray diffraction and X-ray absorption spectroscopy.

Yanjie Cui1, Ali Abouimrane, Jun Lu, Trudy Bolin, Yang Ren, Wei Weng, Chengjun Sun, Victor A Maroni, Steve M Heald, Khalil Amine.   

Abstract

Electrical energy storage for transportation has gone beyond the limit of converntional lithium ion batteries currently. New material or new battery system development is an alternative approach to achieve the goal of new high-energy storage system with energy densities 5 times or more greater. A series of SeSx-carbon (x = 0-7) composite materials has been prepared and evaluated as the positive electrodes in secondary lithium cells with ether-based electrolyte. In situ synchrotron high-energy X-ray diffraction was utilized to investigate the crystalline phase transition during cell cycling. Complementary, in situ Se K-edge X-ray absorption near edge structure analysis was used to track the evolution of the Se valence state for both crystalline and noncrystalline phases, including amorphous and electrolyte-dissolved phases in the (de)lithiation process. On the basis of these results, a mechanism for the (de)lithiation process is proposed, where Se is reduced to the polyselenides, Li2Sen (n ≥ 4), Li2Se2, and Li2Se sequentially during the lithiation and Li2Se is oxidized to Se through Li2Sen (n ≥ 4) during the delithiation. In addition, X-ray photoelectron spectroscopy and electrochemical impedance spectroscopy demonstrated the reversibility of the Li/Se system in ether-based electrolyte and the presence of side products in the carbonate-based electrolytes. For Li/SeS2 and Li/SeS7 cells, Li2Se and Li2S are the discharged products with the presence of Se only as the crystalline phase in the end of charge.

Entities:  

Year:  2013        PMID: 23631402     DOI: 10.1021/ja402597g

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


  9 in total

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Journal:  Nature       Date:  2022-08-24       Impact factor: 69.504

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Journal:  Materials (Basel)       Date:  2022-04-22       Impact factor: 3.748

3.  Graphene-Selenium Hybrid Microballs as Cathode Materials for High-performance Lithium-Selenium Secondary Battery Applications.

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4.  A stable lithiated silicon-chalcogen battery via synergetic chemical coupling between silicon and selenium.

Authors:  KwangSup Eom; Jung Tae Lee; Martin Oschatz; Feixiang Wu; Stefan Kaskel; Gleb Yushin; Thomas F Fuller
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5.  A pyrolyzed polyacrylonitrile/selenium disulfide composite cathode with remarkable lithium and sodium storage performances.

Authors:  Zhen Li; Jintao Zhang; Yan Lu; Xiong Wen David Lou
Journal:  Sci Adv       Date:  2018-06-08       Impact factor: 14.136

6.  In Situ Fabrication of Cuprous Selenide Electrode via Selenization of Copper Current Collector for High-Efficiency Potassium-Ion and Sodium-Ion Storage.

Authors:  Xi Chen; Malin Li; Shi-Ping Wang; Chunzhong Wang; Zexiang Shen; Fu-Quan Bai; Fei Du
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7.  Approaching the voltage and energy density limits of potassium-selenium battery chemistry in a concentrated ether-based electrolyte.

Authors:  Qin Liu; Wenzhuo Deng; Yilong Pan; Chuan-Fu Sun
Journal:  Chem Sci       Date:  2020-05-25       Impact factor: 9.825

8.  Unraveling the Conversion Evolution on Solid-State Na-SeS2 Battery via In Situ TEM.

Authors:  Ziqi Zhang; Zaifa Wang; Long Zhang; Di Liu; Chuang Yu; Xinlin Yan; Jia Xie; Jianyu Huang
Journal:  Adv Sci (Weinh)       Date:  2022-03-23       Impact factor: 17.521

9.  High-power lithium-selenium batteries enabled by atomic cobalt electrocatalyst in hollow carbon cathode.

Authors:  Hao Tian; Huajun Tian; Shijian Wang; Shuangming Chen; Fan Zhang; Li Song; Hao Liu; Jian Liu; Guoxiu Wang
Journal:  Nat Commun       Date:  2020-10-06       Impact factor: 17.694

  9 in total

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