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High Resolution Image Download MS PowerPoint Slide Potassium-ion layered transition-metal oxides (K x TmO 2 ) have gained widespread attention due to their high theoretical capacity, suitable operating voltage, and simple synthesis method. Nevertheless, the complex phase evolutions during the K + intercalation/extraction process lead to poor cycling stability and rate performance, severely hindering its application in potassium-ion batteries. In this work, we found that, in addition to the temperature and heating rate, the annealing process also played a crucial role in modulating the microstructure of layered materials. Optimal annealing rate effectively helps to improve the K + diffusion dynamics, thereby enhancing the electrochemical performance of the cathode. With an annealing time of 500 min (KMNM-500), the obtained sample exhibited a low-defect crystal structure and simpler phase transition process. Thus, it showed good K + diffusion dynamics and cycling stability with an average capacity loss of only 0.048% per cycle at a current density of 0.5 A g −1 . Our work reveals the mechanism by which the annealing process modulates the microstructure of K x TmO 2, providing guidance for the development of high-performance layered cathodes.
Liu et al. (Tue,) studied this question.