Conventional cathodes for Li-ion batteries are layered transition-metal oxides that support Li+ intercalation charge-balanced by redox on the transition metals. Oxidation beyond one electron per transition metal can be achieved in Li-rich layered oxides by involving structural anions, which necessitates high voltages and complex charge compensation mechanisms convoluted by degradation reactions. We report a detailed structural and spectroscopic analysis of the multielectron material Li2Ru0.3Mn0.7O3, chosen due to its low Ru content. Ex situ and operando spectroscopic data over multiple cycles highlight the changing charge compensation mechanism. Notably, over half of the first-cycle capacity is attributed to O2 gas evolution and reversible ...
Li- and Mn-rich layered oxides (LMRs) have emerged as practically feasible cathode materials for hig...
International audienceLi-rich layered oxides, e.g. Li[Li 0.20 Ni 0.13 Mn 0.54 Co 0.13 ]O 2 (LR-NMC),...
Recent research has explored combining conventional transition-metal redox with anionic lattice oxyg...
Conventional cathodes for Li-ion batteries are layered transition-metal oxides that support Li+ inte...
Exploration of Li-rich transition-metal (TM) oxides with active anionic redox reaction has paved a p...
Li<sub>2</sub>Ru<sub>0.5</sub>Mn<sub>0.5</sub>O<sub>3</sub>, a high capacity lithium-rich layered ca...
International audienceUnderstanding the origin of the high capacity displayed by Li2MnO3−LiMO2 (M = ...
Understanding the origin of the high capacity displayed by Li 2MnO3-LiMO2 (M = Ni, Co) composites is...
cited By 1International audienceThe demonstration of reversible anionic redox in Li-rich layered oxi...
The application of Li-rich layered oxides is hindered by their dramatic capacity and voltage decay o...
International audienceElectrode materials based on Li-rich layered oxides are of growing interest fo...
Electrode materials based on Li-rich layered oxides are of growing interest for high-energy Li-ion b...
Despite the importance of studying the instability of delithiated cathode materials, it remains diff...
Li- and Mn-rich layered oxides (LMRs) have emerged as practically feasible cathode materials for hig...
International audienceLi-rich layered oxides, e.g. Li[Li 0.20 Ni 0.13 Mn 0.54 Co 0.13 ]O 2 (LR-NMC),...
Recent research has explored combining conventional transition-metal redox with anionic lattice oxyg...
Conventional cathodes for Li-ion batteries are layered transition-metal oxides that support Li+ inte...
Exploration of Li-rich transition-metal (TM) oxides with active anionic redox reaction has paved a p...
Li<sub>2</sub>Ru<sub>0.5</sub>Mn<sub>0.5</sub>O<sub>3</sub>, a high capacity lithium-rich layered ca...
International audienceUnderstanding the origin of the high capacity displayed by Li2MnO3−LiMO2 (M = ...
Understanding the origin of the high capacity displayed by Li 2MnO3-LiMO2 (M = Ni, Co) composites is...
cited By 1International audienceThe demonstration of reversible anionic redox in Li-rich layered oxi...
The application of Li-rich layered oxides is hindered by their dramatic capacity and voltage decay o...
International audienceElectrode materials based on Li-rich layered oxides are of growing interest fo...
Electrode materials based on Li-rich layered oxides are of growing interest for high-energy Li-ion b...
Despite the importance of studying the instability of delithiated cathode materials, it remains diff...
Li- and Mn-rich layered oxides (LMRs) have emerged as practically feasible cathode materials for hig...
International audienceLi-rich layered oxides, e.g. Li[Li 0.20 Ni 0.13 Mn 0.54 Co 0.13 ]O 2 (LR-NMC),...
Recent research has explored combining conventional transition-metal redox with anionic lattice oxyg...