Literature DB >> 31816625

Superstructure control of first-cycle voltage hysteresis in oxygen-redox cathodes.

Urmimala Maitra1, Miguel A Pérez-Osorio1, Robert A House1, Juan G Lozano1,2, Liyu Jin1, James W Somerville1, Laurent C Duda3, Abhishek Nag4, Andrew Walters4, Ke-Jin Zhou4, Matthew R Roberts1, Peter G Bruce5,6,7,8.   

Abstract

In conventional intercalation cathodes, alkali metal ions can move in and out of a layered material with the charge being compensated for by reversible reduction and oxidation of the transition metal ions. If the cathode material used in a lithium-ion or sodium-ion battery is alkali-rich, this can increase the battery's energy density by storing charge on the oxide and the transition metal ions, rather than on the transition metal alone1-10. There is a high voltage associated with oxidation of O2- during the first charge, but this is not recovered on discharge, resulting in reduced energy density11. Displacement of transition metal ions into the alkali metal layers has been proposed to explain the first-cycle voltage loss (hysteresis)9,12-16. By comparing two closely related intercalation cathodes, Na0.75[Li0.25Mn0.75]O2 and Na0.6[Li0.2Mn0.8]O2, here we show that the first-cycle voltage hysteresis is determined by the superstructure in the cathode, specifically the local ordering of lithium and transition metal ions in the transition metal layers. The honeycomb superstructure of Na0.75[Li0.25Mn0.75]O2, present in almost all oxygen-redox compounds, is lost on charging, driven in part by formation of molecular O2 inside the solid. The O2 molecules are cleaved on discharge, reforming O2-, but the manganese ions have migrated within the plane, changing the coordination around O2- and lowering the voltage on discharge. The ribbon superstructure in Na0.6[Li0.2Mn0.8]O2 inhibits manganese disorder and hence O2 formation, suppressing hysteresis and promoting stable electron holes on O2- that are revealed by X-ray absorption spectroscopy. The results show that voltage hysteresis can be avoided in oxygen-redox cathodes by forming materials with a ribbon superstructure in the transition metal layers that suppresses migration of the transition metal.

Entities:  

Year:  2019        PMID: 31816625     DOI: 10.1038/s41586-019-1854-3

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   69.504


  17 in total

1.  First-charge instabilities of layered-layered lithium-ion-battery materials.

Authors:  Jason R Croy; Hakim Iddir; Kevin Gallagher; Christopher S Johnson; Roy Benedek; Mahalingam Balasubramanian
Journal:  Phys Chem Chem Phys       Date:  2015-09-03       Impact factor: 3.676

2.  Metal-oxygen decoordination stabilizes anion redox in Li-rich oxides.

Authors:  Jihyun Hong; William E Gent; Penghao Xiao; Kipil Lim; Dong-Hwa Seo; Jinpeng Wu; Peter M Csernica; Christopher J Takacs; Dennis Nordlund; Cheng-Jun Sun; Kevin H Stone; Donata Passarello; Wanli Yang; David Prendergast; Gerbrand Ceder; Michael F Toney; William C Chueh
Journal:  Nat Mater       Date:  2019-02-04       Impact factor: 43.841

3.  The structural and chemical origin of the oxygen redox activity in layered and cation-disordered Li-excess cathode materials.

Authors:  Dong-Hwa Seo; Jinhyuk Lee; Alexander Urban; Rahul Malik; ShinYoung Kang; Gerbrand Ceder
Journal:  Nat Chem       Date:  2016-05-30       Impact factor: 24.427

4.  Charge-compensation in 3d-transition-metal-oxide intercalation cathodes through the generation of localized electron holes on oxygen.

Authors:  Kun Luo; Matthew R Roberts; Rong Hao; Niccoló Guerrini; David M Pickup; Yi-Sheng Liu; Kristina Edström; Jinghua Guo; Alan V Chadwick; Laurent C Duda; Peter G Bruce
Journal:  Nat Chem       Date:  2016-03-21       Impact factor: 24.427

5.  Oxygen redox chemistry without excess alkali-metal ions in Na2/3[Mg0.28Mn0.72]O2.

Authors:  Urmimala Maitra; Robert A House; James W Somerville; Nuria Tapia-Ruiz; Juan G Lozano; Niccoló Guerrini; Rong Hao; Kun Luo; Liyu Jin; Miguel A Pérez-Osorio; Felix Massel; David M Pickup; Silvia Ramos; Xingye Lu; Daniel E McNally; Alan V Chadwick; Feliciano Giustino; Thorsten Schmitt; Laurent C Duda; Matthew R Roberts; Peter G Bruce
Journal:  Nat Chem       Date:  2018-01-22       Impact factor: 24.427

6.  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

7.  Evidence for anionic redox activity in a tridimensional-ordered Li-rich positive electrode β-Li2IrO3.

Authors:  Paul E Pearce; Arnaud J Perez; Gwenaelle Rousse; Mathieu Saubanère; Dmitry Batuk; Dominique Foix; Eric McCalla; Artem M Abakumov; Gustaaf Van Tendeloo; Marie-Liesse Doublet; Jean-Marie Tarascon
Journal:  Nat Mater       Date:  2017-02-27       Impact factor: 43.841

8.  Intermediate honeycomb ordering to trigger oxygen redox chemistry in layered battery electrode.

Authors:  Benoit Mortemard de Boisse; Guandong Liu; Jiangtao Ma; Shin-Ichi Nishimura; Sai-Cheong Chung; Hisao Kiuchi; Yoshihisa Harada; Jun Kikkawa; Yoshio Kobayashi; Masashi Okubo; Atsuo Yamada
Journal:  Nat Commun       Date:  2016-04-18       Impact factor: 14.919

9.  Coupling between oxygen redox and cation migration explains unusual electrochemistry in lithium-rich layered oxides.

Authors:  William E Gent; Kipil Lim; Yufeng Liang; Qinghao Li; Taylor Barnes; Sung-Jin Ahn; Kevin H Stone; Mitchell McIntire; Jihyun Hong; Jay Hyok Song; Yiyang Li; Apurva Mehta; Stefano Ermon; Tolek Tyliszczak; David Kilcoyne; David Vine; Jin-Hwan Park; Seok-Kwang Doo; Michael F Toney; Wanli Yang; David Prendergast; William C Chueh
Journal:  Nat Commun       Date:  2017-12-12       Impact factor: 14.919

10.  Elucidating anionic oxygen activity in lithium-rich layered oxides.

Authors:  Jing Xu; Meiling Sun; Ruimin Qiao; Sara E Renfrew; Lu Ma; Tianpin Wu; Sooyeon Hwang; Dennis Nordlund; Dong Su; Khalil Amine; Jun Lu; Bryan D McCloskey; Wanli Yang; Wei Tong
Journal:  Nat Commun       Date:  2018-03-05       Impact factor: 14.919

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  22 in total

1.  Structural and chemical evolution in layered oxide cathodes of lithium-ion batteries revealed by synchrotron techniques.

Authors:  Guannan Qian; Junyang Wang; Hong Li; Zi-Feng Ma; Piero Pianetta; Linsen Li; Xiqian Yu; Yijin Liu
Journal:  Natl Sci Rev       Date:  2021-08-17       Impact factor: 17.275

Review 2.  Active material and interphase structures governing performance in sodium and potassium ion batteries.

Authors:  Eun Jeong Kim; P Ramesh Kumar; Zachary T Gossage; Kei Kubota; Tomooki Hosaka; Ryoichi Tatara; Shinichi Komaba
Journal:  Chem Sci       Date:  2022-05-18       Impact factor: 9.969

Review 3.  17O NMR Spectroscopy in Lithium-Ion Battery Cathode Materials: Challenges and Interpretation.

Authors:  Euan N Bassey; Philip J Reeves; Ieuan D Seymour; Clare P Grey
Journal:  J Am Chem Soc       Date:  2022-10-06       Impact factor: 16.383

4.  Transition metal migration and O2 formation underpin voltage hysteresis in oxygen-redox disordered rocksalt cathodes.

Authors:  Kit McColl; Robert A House; Gregory J Rees; Alexander G Squires; Samuel W Coles; Peter G Bruce; Benjamin J Morgan; M Saiful Islam
Journal:  Nat Commun       Date:  2022-09-07       Impact factor: 17.694

5.  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

6.  A medium-entropy transition metal oxide cathode for high-capacity lithium metal batteries.

Authors:  Yi Pei; Qing Chen; Meiyu Wang; Pengjun Zhang; Qingyong Ren; Jingkai Qin; Penghao Xiao; Li Song; Yu Chen; Wen Yin; Xin Tong; Liang Zhen; Peng Wang; Cheng-Yan Xu
Journal:  Nat Commun       Date:  2022-10-18       Impact factor: 17.694

7.  Addressing voltage decay in Li-rich cathodes by broadening the gap between metallic and anionic bands.

Authors:  Jicheng Zhang; Qinghua Zhang; Deniz Wong; Nian Zhang; Guoxi Ren; Lin Gu; Christian Schulz; Lunhua He; Yang Yu; Xiangfeng Liu
Journal:  Nat Commun       Date:  2021-05-24       Impact factor: 14.919

8.  Boosting oxygen reduction activity and enhancing stability through structural transformation of layered lithium manganese oxide.

Authors:  Xuepeng Zhong; M'hamed Oubla; Xiao Wang; Yangyang Huang; Huiyan Zeng; Shaofei Wang; Kun Liu; Jian Zhou; Lunhua He; Haihong Zhong; Nicolas Alonso-Vante; Chin-Wei Wang; Wen-Bin Wu; Hong-Ji Lin; Chien-Te Chen; Zhiwei Hu; Yunhui Huang; Jiwei Ma
Journal:  Nat Commun       Date:  2021-05-25       Impact factor: 14.919

9.  Smoothing the Surface and Improving the Electrochemical Properties of NaxMnO2 by a Wet Chemical Method.

Authors:  Siliang Zhao; Zhiping Lin; Fugen Wu; Feng Xiao; Jiantie Xu
Journal:  Nanomaterials (Basel)       Date:  2020-01-30       Impact factor: 5.076

10.  Pillar-beam structures prevent layered cathode materials from destructive phase transitions.

Authors:  Yuesheng Wang; Zimin Feng; Peixin Cui; Wen Zhu; Yue Gong; Marc-André Girard; Gilles Lajoie; Julie Trottier; Qinghua Zhang; Lin Gu; Yan Wang; Wenhua Zuo; Yong Yang; John B Goodenough; Karim Zaghib
Journal:  Nat Commun       Date:  2021-01-04       Impact factor: 14.919

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