Pranti Sutar, Johannes Helmut Thienenkamp, Laurin Profanter, Tim Messink, Annalena Krude, Uta Rodehorst, Hyuck Hur, Gunther Brunklaus, Dominik Voigt, Martin Winter, Johannes Kasnatscheew
Lithium/manganese-rich (LMR)-based cathodes can enhance the specific energy of Li ion batteries and are conventionally synthesized via a carbonate-based precursor (LMR-CO3). The CO2 evolution-related voids and enhanced surface area can be avoided by calcination of a hydroxide-based precursor [LMR-(OH)2]. This way, the LMR releases less oxygen during charge, as seen by a decreased Mn3+/4+ redox activity and decreased voltage fade. However, the lower specific discharge capacity is attributed to a decreased lithiation amount in the initial cycles for LMR-(OH)2 and is related to a higher Li+ extraction degree, that is, a higher redox oxidation number at the discharged state. Interestingly, this decreases the accompanying amount of detrimental Mn3+ and is concluded to improve cycle life, due to, for example, minimized Jahn-Teller distortions and disproportionation reactions. The differences in lithiation (e- + Li+) degrees of the two LMRs emerge at end-of-discharge and can stem from differences in either redox resistance and/or resistance of Li+ intercalation, for example, due to slight crystal stacking faults in the course of different synthesis conditions and/or simply from bigger particle sizes.