Ilias Papailias, Arash Namaeighasemi, Musawenkosi K. Ncube, Roshan Y. Nemade, Naveen K. Dandu, Nikhil Rai, Syed Ibrahim Gnani Peer Mohamed, Hessam Shahbazi, Suchit Sarin, Ahmad Jaradat, Shahriar Namvar, Pardis Seraji, Vikas Berry, Arunkumar Subramanian, Jeffrey E. Shield, Siamak Nejati, Anh T. Ngo, Larry A. Curtiss, Amin Salehi-Khojin
Lithium-carbon dioxide batteries hold great promise for high-energy-density storage applications. However, advancing this technology as a sustainable alternative to Li-ion systems requires a deeper understanding of the underlying reaction mechanisms, which remain elusive. A key challenge stems from the added complexity introduced by the presence of oxygen in CO2 environment. In this study, we employ a stable Cu3(VBi)0.5Se4 mid-entropy catalyst and conduct comprehensive investigation to uncover the underlying reaction mechanisms in Li-CO2 batteries under varying CO2/O2 ratios. Under pure CO2 conditions, the battery shows extended rechargeability, sustaining up to 1200 cycles at a current density of 0.2 mA/cm2 and capacity of 0.1 mAh/cm2. However, at high current densities, the discharge potential drops significantly (below 2.0 V), primarily due to sluggish reaction kinetics caused by solid carbon formation. Interestingly, introducing O2 mitigates this limitation, leading to a 58% increase of the discharge potential (from 1.7 V to 2.7 V) at the current density of 0.8 mA/cm2, signifying a substantial boost in energy output. Our results reveal that the reactions follow distinct pathways, shifting from surface- to solution-based mechanism, and even exhibit coexistence of both mechanisms, depending on the CO2/O2 ratio. These findings offer useful insights for designing sustainable Li-gas batteries utilizing CO2 and O2 mixtures. Advancing Li-CO2 systems as a sustainable alternative technology requires a deep understanding of the reaction mechanisms. Here, authors establish a controlled supply of O2 in Li-CO2 batteries as a strategy to increase performance and reveal the distinct reaction pathways under CO2 and CO2/O2 gas.