Li 2 MO 3 (M = transition metal) systems are parent compounds of Li-rich materials and widely considered to offer oxygen redox for high-energy batteries. However, recent clarifications have revealed that, among the three representative Li 2 MO 3 (M = Mn, Ru, Ir) compounds, no reversible oxygen redox takes place in the Mn and Ir systems. Here, we reevaluate the redox reactions in Li 2 RuO 3 through advanced spectroscopy, which shows both Ru redox and highly reversible O redox (96% initial-cycle reversibility, 80% retained after 10 cycles, and 77% after 50 cycles). This is in sharp contrast with the Li 2 MnO 3 and Li 2 IrO 3 systems and concludes the three distinct oxygen behaviors in the Li 2 MO 3 systems during charging: (i) only irreversible oxygen oxidation in Li 2 MnO 3; (ii) reversible Ru and O redox in Li 2 RuO 3; (iii) only cationic redox in Li 2 IrO 3 . This work suggests the critical role of transition metals and their coupling to oxygen for maintaining reversible oxygen redox activities for high-energy batteries.
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Zhuo et al. (2021) studied this question.
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