Literature DB >> 32210521

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

Yang Yu1, Pinar Karayaylali2, Stanisław H Nowak3, Livia Giordano2,4, Magali Gauthier4, Wesley Hong1, Ronghui Kou5, Qinghao Li6, John Vinson7, Thomas Kroll3, Dimosthenis Sokaras3, Cheng-Jun Sun5, Nenian Charles4, Filippo Maglia8, Roland Jung8, Yang Shao-Horn1,2,4.   

Abstract

Anion redox in lithium transition metal oxides such as Li2RuO3 and Li2MnO3, has catalyzed intensive research efforts to find transition metal oxides with anion redox that may boost the energy density of lithium-ion batteries. The physical origin of observed anion redox remains debated, and more direct experimental evidence is needed. In this work, we have shown electronic signatures of oxygen-oxygen coupling, direct evidence central to lattice oxygen redox (O2-/(O2)n-), in charged Li2-xRuO3 after Ru oxidation (Ru4+/Ru5+) upon first-electron removal with lithium de-intercalation. Experimental Ru L3-edge high-energy-resolution fluorescence detected X-ray absorption spectra (HERFD-XAS), supported by ab-initio simulations, revealed that the increased intensity in the high-energy shoulder upon lithium de-intercalation resulted from increased O-O coupling, inducing (O-O) σ*-like states with π overlap with Ru d-manifolds, in agreement with O K-edge XAS spectra. Experimental and simulated O K-edge X-ray emission spectra (XES) further supported this observation with the broadening of the oxygen non-bonding feature upon charging, also originated from (O-O) σ* states. This lattice oxygen redox of Li2-xRuO3 was accompanied by a small amount of O2 evolution in the first charge from differential electrochemistry mass spectrometry (DEMS) but diminished in the subsequent cycles, in agreement with the more reduced states of Ru in later cycles from Ru L3-edge HERFD-XAS. These observations indicated that Ru redox contributed more to discharge capacities after the first cycle. This study has pinpointed the key spectral fingerprints related to lattice oxygen redox from a molecular level and constructed a transferrable framework to rationally interpret the spectroscopic features by combining advanced experiments and theoretical calculations to design materials for Li-ion batteries and electrocatalysis applications.

Entities:  

Year:  2019        PMID: 32210521      PMCID: PMC7092754          DOI: 10.1021/acs.chemmater.9b01821

Source DB:  PubMed          Journal:  Chem Mater        ISSN: 0897-4756            Impact factor:   9.811


  30 in total

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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

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Authors:  Igor Alperovich; Grigory Smolentsev; Dooshaye Moonshiram; Jonah W Jurss; Javier J Concepcion; Thomas J Meyer; Alexander Soldatov; Yulia Pushkar
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Authors:  Sara E Renfrew; Bryan D McCloskey
Journal:  J Am Chem Soc       Date:  2017-11-22       Impact factor: 15.419

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  1 in total

Review 1.  Transition metal oxides as a cathode for indispensable Na-ion batteries.

Authors:  Archana Kanwade; Sheetal Gupta; Akash Kankane; Manish Kumar Tiwari; Abhishek Srivastava; Jena Akash Kumar Satrughna; Subhash Chand Yadav; Parasharam M Shirage
Journal:  RSC Adv       Date:  2022-08-17       Impact factor: 4.036

  1 in total

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