Literature DB >> 23237664

Formation of the spinel phase in the layered composite cathode used in Li-ion batteries.

Meng Gu1, Ilias Belharouak, Jianming Zheng, Huiming Wu, Jie Xiao, Arda Genc, Khalil Amine, Suntharampillai Thevuthasan, Donald R Baer, Ji-Guang Zhang, Nigel D Browning, Jun Liu, Chongmin Wang.   

Abstract

Pristine Li-rich layered cathodes, such as Li(1.2)Ni(0.2)Mn(0.6)O(2) and Li(1.2)Ni(0.1)Mn(0.525)Co(0.175)O(2), were identified to exist in two different structures: LiMO(2)R3[overline]m and Li(2)MO(3)C2/m phases. Upon 300 cycles of charge/discharge, both phases gradually transform to the spinel structure. The transition from LiMO(2)R3[overline]m to spinel is accomplished through the migration of transition metal ions to the Li site without breaking down the lattice, leading to the formation of mosaic structured spinel grains within the parent particle. In contrast, transition from Li(2)MO(3)C2/m to spinel involves removal of Li(+) and O(2-), which produces large lattice strain and leads to the breakdown of the parent lattice. The newly formed spinel grains show random orientation within the same particle. Cracks and pores were also noticed within some layered nanoparticles after cycling, which is believed to be the consequence of the lattice breakdown and vacancy condensation upon removal of lithium ions. The AlF(3)-coating can partially relieve the spinel formation in the layered structure during cycling, resulting in a slower capacity decay. However, the AlF(3)-coating on the layered structure cannot ultimately stop the spinel formation. The observation of structure transition characteristics discussed in this paper provides direct explanation for the observed gradual capacity loss and poor rate performance of the layered composite. It also provides clues about how to improve the materials structure in order to improve electrochemical performance.

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Year:  2012        PMID: 23237664     DOI: 10.1021/nn305065u

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  34 in total

1.  Structural studies of Li1.2Mn0.55Ni0.15Co0.1O2 electrode material.

Authors:  Aaron C Johnston-Peck; Igor Levin; Andrew A Herzing; Leonid A Bendersky
Journal:  Mater Charact       Date:  2016-07-18       Impact factor: 4.342

2.  Origin of voltage decay in high-capacity layered oxide electrodes.

Authors:  M Sathiya; A M Abakumov; D Foix; G Rousse; K Ramesha; M Saubanère; M L Doublet; H Vezin; C P Laisa; A S Prakash; D Gonbeau; G VanTendeloo; J-M Tarascon
Journal:  Nat Mater       Date:  2014-12-01       Impact factor: 43.841

3.  Reversible anionic redox chemistry in high-capacity layered-oxide electrodes.

Authors:  M Sathiya; G Rousse; K Ramesha; C P Laisa; H Vezin; M T Sougrati; M-L Doublet; D Foix; D Gonbeau; W Walker; A S Prakash; M Ben Hassine; L Dupont; J-M Tarascon
Journal:  Nat Mater       Date:  2013-07-14       Impact factor: 43.841

4.  Unexpectedly Large Contribution of Oxygen to Charge Compensation Triggered by Structural Disordering: Detailed Experimental and Theoretical Study on a Li3NbO4-NiO Binary System.

Authors:  Ryutaro Fukuma; Maho Harada; Wenwen Zhao; Miho Sawamura; Yusuke Noda; Masanobu Nakayama; Masato Goto; Daisuke Kan; Yuichi Shimakawa; Masao Yonemura; Naohiro Ikeda; Ryuta Watanuki; Henrik L Andersen; Anita M D'Angelo; Neeraj Sharma; Jiwon Park; Hye Ryung Byon; Sayuri Fukuyama; Zhenji Han; Hitoshi Fukumitsu; Martin Schulz-Dobrick; Keisuke Yamanaka; Hirona Yamagishi; Toshiaki Ohta; Naoaki Yabuuchi
Journal:  ACS Cent Sci       Date:  2022-05-23       Impact factor: 18.728

5.  Visualizing nanoscale 3D compositional fluctuation of lithium in advanced lithium-ion battery cathodes.

Authors:  A Devaraj; M Gu; R Colby; P Yan; C M Wang; J M Zheng; J Xiao; A Genc; J G Zhang; I Belharouak; D Wang; K Amine; S Thevuthasan
Journal:  Nat Commun       Date:  2015-08-14       Impact factor: 14.919

6.  High rate capability caused by surface cubic spinels in Li-rich layer-structured cathodes for Li-ion batteries.

Authors:  Bohang Song; Hongwei Liu; Zongwen Liu; Pengfei Xiao; Man On Lai; Li Lu
Journal:  Sci Rep       Date:  2013-10-31       Impact factor: 4.379

7.  Mesoscale origin of the enhanced cycling-stability of the Si-conductive polymer anode for Li-ion batteries.

Authors:  Meng Gu; Xing-Cheng Xiao; Gao Liu; Suntharampillai Thevuthasan; Donald R Baer; Ji-Guang Zhang; Jun Liu; Nigel D Browning; Chong-Min Wang
Journal:  Sci Rep       Date:  2014-01-14       Impact factor: 4.379

8.  Phase Transitions in the "Spinel-Layered" Li1+xNi0.5Mn1.5O4 (x = 0, 0.5, 1) Cathodes upon (De)lithiation Studied with Operando Synchrotron X-ray Powder Diffraction.

Authors:  Oleg A Drozhzhin; Anastasia M Alekseeva; Vitalii A Shevchenko; Dmitry Chernyshov; Artem M Abakumov; Evgeny V Antipov
Journal:  Nanomaterials (Basel)       Date:  2021-05-21       Impact factor: 5.076

9.  Evolution and expansion of Li concentration gradient during charge-discharge cycling.

Authors:  Byeong-Gyu Chae; Seong Yong Park; Jay Hyok Song; Eunha Lee; Woo Sung Jeon
Journal:  Nat Commun       Date:  2021-06-21       Impact factor: 14.919

10.  Nanoscale morphological and chemical changes of high voltage lithium-manganese rich NMC composite cathodes with cycling.

Authors:  Feifei Yang; Yijin Liu; Surendra K Martha; Ziyu Wu; Joy C Andrews; Gene E Ice; Piero Pianetta; Jagjit Nanda
Journal:  Nano Lett       Date:  2014-07-30       Impact factor: 11.189

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