Literature DB >> 28346458

Revealing the reaction mechanisms of Li-O2 batteries using environmental transmission electron microscopy.

Langli Luo1, Bin Liu2, Shidong Song2,3, Wu Xu2, Ji-Guang Zhang2, Chongmin Wang1.   

Abstract

The performances of a Li-O2 battery depend on a complex interplay between the reaction mechanism at the cathode, the chemical structure and the morphology of the reaction products, and their spatial and temporal evolution; all parameters that, in turn, are dependent on the choice of the electrolyte. In an aprotic cell, for example, the discharge product, Li2O2, forms through a combination of solution and surface chemistries that results in the formation of a baffling toroidal morphology. In a solid electrolyte, neither the reaction mechanism at the cathode nor the nature of the reaction product is known. Here we report the full-cycle reaction pathway for Li-O2 batteries and show how this correlates with the morphology of the reaction products. Using aberration-corrected environmental transmission electron microscopy (TEM) under an oxygen environment, we image the product morphology evolution on a carbon nanotube (CNT) cathode of a working solid-state Li-O2 nanobattery and correlate these features with the electrochemical reaction at the electrode. We find that the oxygen-reduction reaction (ORR) on CNTs initially produces LiO2, which subsequently disproportionates into Li2O2 and O2. The release of O2 creates a hollow nanostructure with Li2O outer-shell and Li2O2 inner-shell surfaces. Our findings show that, in general, the way the released O2 is accommodated is linked to lithium-ion diffusion and electron-transport paths across both spatial and temporal scales; in turn, this interplay governs the morphology of the discharging/charging products in Li-O2 cells.

Entities:  

Year:  2017        PMID: 28346458     DOI: 10.1038/nnano.2017.27

Source DB:  PubMed          Journal:  Nat Nanotechnol        ISSN: 1748-3387            Impact factor:   39.213


  12 in total

1.  Li-O2 and Li-S batteries with high energy storage.

Authors:  Peter G Bruce; Stefan A Freunberger; Laurence J Hardwick; Jean-Marie Tarascon
Journal:  Nat Mater       Date:  2011-12-15       Impact factor: 43.841

2.  Oxygen reactions in a non-aqueous Li+ electrolyte.

Authors:  Zhangquan Peng; Stefan A Freunberger; Laurence J Hardwick; Yuhui Chen; Vincent Giordani; Fanny Bardé; Petr Novák; Duncan Graham; Jean-Marie Tarascon; Peter G Bruce
Journal:  Angew Chem Int Ed Engl       Date:  2011-05-23       Impact factor: 15.336

3.  Nonaqueous Li-air batteries: a status report.

Authors:  Alan C Luntz; Bryan D McCloskey
Journal:  Chem Rev       Date:  2014-11-07       Impact factor: 60.622

4.  A lithium-oxygen battery based on lithium superoxide.

Authors:  Jun Lu; Yun Jung Lee; Xiangyi Luo; Kah Chun Lau; Mohammad Asadi; Hsien-Hau Wang; Scott Brombosz; Jianguo Wen; Dengyun Zhai; Zonghai Chen; Dean J Miller; Yo Sub Jeong; Jin-Bum Park; Zhigang Zak Fang; Bijandra Kumar; Amin Salehi-Khojin; Yang-Kook Sun; Larry A Curtiss; Khalil Amine
Journal:  Nature       Date:  2016-01-11       Impact factor: 49.962

5.  A transmission electron microscopy study of the electrochemical process of lithium-oxygen cells.

Authors:  Hun-Gi Jung; Hee-Soo Kim; Jin-Bum Park; In-Hwan Oh; Jusef Hassoun; Chong Seung Yoon; Bruno Scrosati; Yang-Kook Sun
Journal:  Nano Lett       Date:  2012-07-24       Impact factor: 11.189

6.  Aprotic and aqueous Li-O₂ batteries.

Authors:  Jun Lu; Li Li; Jin-Bum Park; Yang-Kook Sun; Feng Wu; Khalil Amine
Journal:  Chem Rev       Date:  2014-04-11       Impact factor: 60.622

7.  The role of LiO2 solubility in O2 reduction in aprotic solvents and its consequences for Li-O2 batteries.

Authors:  Lee Johnson; Chunmei Li; Zheng Liu; Yuhui Chen; Stefan A Freunberger; Praveen C Ashok; Bavishna B Praveen; Kishan Dholakia; Jean-Marie Tarascon; Peter G Bruce
Journal:  Nat Chem       Date:  2014-11-10       Impact factor: 24.427

8.  Solvating additives drive solution-mediated electrochemistry and enhance toroid growth in non-aqueous Li-O₂ batteries.

Authors:  Nagaphani B Aetukuri; Bryan D McCloskey; Jeannette M García; Leslie E Krupp; Venkatasubramanian Viswanathan; Alan C Luntz
Journal:  Nat Chem       Date:  2014-12-15       Impact factor: 24.427

9.  A critical review on lithium-air battery electrolytes.

Authors:  Moran Balaish; Alexander Kraytsberg; Yair Ein-Eli
Journal:  Phys Chem Chem Phys       Date:  2014-02-21       Impact factor: 3.676

10.  Promoting solution phase discharge in Li-O2 batteries containing weakly solvating electrolyte solutions.

Authors:  Xiangwen Gao; Yuhui Chen; Lee Johnson; Peter G Bruce
Journal:  Nat Mater       Date:  2016-04-25       Impact factor: 43.841

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  2 in total

1.  Realizing the Embedded Growth of Large Li2O2 Aggregations by Matching Different Metal Oxides for High-Capacity and High-Rate Lithium Oxygen Batteries.

Authors:  Peng Zhang; Shoufeng Zhang; Mu He; Junwei Lang; Aimin Ren; Shan Xu; Xingbin Yan
Journal:  Adv Sci (Weinh)       Date:  2017-07-20       Impact factor: 16.806

2.  Operando characterization of cathodic reactions in a liquid-state lithium-oxygen micro-battery by scanning transmission electron microscopy.

Authors:  Pan Liu; Jiuhui Han; Xianwei Guo; Yoshikazu Ito; Chuchu Yang; Shoucong Ning; Takeshi Fujita; Akihiko Hirata; Mingwei Chen
Journal:  Sci Rep       Date:  2018-02-16       Impact factor: 4.379

  2 in total

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