Literature DB >> 30718861

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

Jihyun Hong1,2,3,4,5, William E Gent6,7, Penghao Xiao8, Kipil Lim1,2,3,4, Dong-Hwa Seo9, Jinpeng Wu3,7, Peter M Csernica1, Christopher J Takacs2, Dennis Nordlund2, Cheng-Jun Sun10, Kevin H Stone2, Donata Passarello2, Wanli Yang7, David Prendergast11, Gerbrand Ceder12,13, Michael F Toney14,15, William C Chueh16,17,18.   

Abstract

Reversible high-voltage redox chemistry is an essential component of many electrochemical technologies, from (electro)catalysts to lithium-ion batteries. Oxygen-anion redox has garnered intense interest for such applications, particularly lithium-ion batteries, as it offers substantial redox capacity at more than 4 V versus Li/Li+ in a variety of oxide materials. However, oxidation of oxygen is almost universally correlated with irreversible local structural transformations, voltage hysteresis and voltage fade, which currently preclude its widespread use. By comprehensively studying the Li2-xIr1-ySnyO3 model system, which exhibits tunable oxidation state and structural evolution with y upon cycling, we reveal that this structure-redox coupling arises from the local stabilization of short approximately 1.8 Å metal-oxygen π bonds and approximately 1.4 Å O-O dimers during oxygen redox, which occurs in Li2-xIr1-ySnyO3 through ligand-to-metal charge transfer. Crucially, formation of these oxidized oxygen species necessitates the decoordination of oxygen to a single covalent bonding partner through formation of vacancies at neighbouring cation sites, driving cation disorder. These insights establish a point-defect explanation for why anion redox often occurs alongside local structural disordering and voltage hysteresis during cycling. Our findings offer an explanation for the unique electrochemical properties of lithium-rich layered oxides, with implications generally for the design of materials employing oxygen redox chemistry.

Entities:  

Year:  2019        PMID: 30718861     DOI: 10.1038/s41563-018-0276-1

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


  18 in total

1.  Tomographic reconstruction of oxygen orbitals in lithium-rich battery materials.

Authors:  Hasnain Hafiz; Kosuke Suzuki; Bernardo Barbiellini; Naruki Tsuji; Naoaki Yabuuchi; Kentaro Yamamoto; Yuki Orikasa; Yoshiharu Uchimoto; Yoshiharu Sakurai; Hiroshi Sakurai; Arun Bansil; Venkatasubramanian Viswanathan
Journal:  Nature       Date:  2021-06-09       Impact factor: 49.962

2.  Origin of structural degradation in Li-rich layered oxide cathode.

Authors:  Tongchao Liu; Jiajie Liu; Luxi Li; Lei Yu; Jiecheng Diao; Tao Zhou; Shunning Li; Alvin Dai; Wenguang Zhao; Shenyang Xu; Yang Ren; Liguang Wang; Tianpin Wu; Rui Qi; Yinguo Xiao; Jiaxin Zheng; Wonsuk Cha; Ross Harder; Ian Robinson; Jianguo Wen; Jun Lu; Feng Pan; Khalil Amine
Journal:  Nature       Date:  2022-06-08       Impact factor: 49.962

Review 3.  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 4.  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

5.  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

6.  Revealing Electronic Signature of Lattice Oxygen Redox in Lithium Ruthenates and Implications for High-Energy Li-ion Battery Material Designs.

Authors:  Yang Yu; Pinar Karayaylali; Stanisław H Nowak; Livia Giordano; Magali Gauthier; Wesley Hong; Ronghui Kou; Qinghao Li; John Vinson; Thomas Kroll; Dimosthenis Sokaras; Cheng-Jun Sun; Nenian Charles; Filippo Maglia; Roland Jung; Yang Shao-Horn
Journal:  Chem Mater       Date:  2019       Impact factor: 9.811

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

Authors:  Urmimala Maitra; Miguel A Pérez-Osorio; Robert A House; Juan G Lozano; Liyu Jin; James W Somerville; Laurent C Duda; Abhishek Nag; Andrew Walters; Ke-Jin Zhou; Matthew R Roberts; Peter G Bruce
Journal:  Nature       Date:  2019-12-09       Impact factor: 69.504

9.  Tuning of lattice oxygen reactivity and scaling relation to construct better oxygen evolution electrocatalyst.

Authors:  Zhen-Feng Huang; Shibo Xi; Jiajia Song; Shuo Dou; Xiaogang Li; Yonghua Du; Caozheng Diao; Zhichuan J Xu; Xin Wang
Journal:  Nat Commun       Date:  2021-06-28       Impact factor: 14.919

10.  Structural Origins of Voltage Hysteresis in the Na-Ion Cathode P2-Na0.67[Mg0.28Mn0.72]O2: A Combined Spectroscopic and Density Functional Theory Study.

Authors:  Euan N Bassey; Philip J Reeves; Michael A Jones; Jeongjae Lee; Ieuan D Seymour; Giannantonio Cibin; Clare P Grey
Journal:  Chem Mater       Date:  2021-06-21       Impact factor: 9.811

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