A Potential Cathode Material for Rechargeable Potassium-Ion Batteries Inducing Manganese Cation and Oxygen Anion Redox Chemistry: Potassium-Deficient $\rm K_{0.4}Fe_{0.5}Mn_{0.5}O_2$
Titus Masese, Kazuki Yoshii, Kohei Tada, Minami Kato, Satoshi Uchida,, Keigo Kubota, Toshiaki Ina, Toyoki Okumura, Zhen-Dong Huang, Junya Furutani,, Yuki Orikasa, Hiroshi Senoh, Shingo Tanaka, Masahiro Shikano

TL;DR
This study introduces a new potassium-ion battery cathode, $ m K_{0.4}Fe_{0.5}Mn_{0.5}O_2$, demonstrating reversible capacity, good rate capability, and involving both manganese cation and oxygen anion redox chemistry for enhanced energy storage.
Contribution
The paper reports the discovery and characterization of a novel cathode material for K-ion batteries that exhibits reversible K-ion insertion and dual redox activity, advancing battery performance.
Findings
Reversible capacity of ~120 mAh g$^{-1}$ at C/10 rate.
Retention of ~85% capacity at 1 C rate.
Participation of both Mn cations and oxygen anions in redox processes.
Abstract
Potassium-ion (-ion) rechargeable batteries; considered to be lucrative low-cost battery options for large-scale and capacious energy storage systems, have been garnering tremendous attention in recent years. However, due to the scarcity of cathode materials that can condone the reversible re-insertion of the large -ions at feasible capacities, the viability of -ion batteries has been greatly undercut. In this paper, we explore a potential cathode material in the -- ternary phase system, that not only demonstrates reversible -ion reinsertion but also manifests relatively fast rate capabilities. The titled cathode compound, , demonstrates a reversible capacity of approximately mAh g at hours of (dis)charge (, rate) with % of the capacity…
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