Article,
Non-layered KFeO/KFeO cathodes promoted by dual-phase crystal synergistic regulation strategies based on eutectoid transformation for potassium ion batteries
Affiliations
- [1] Northeastern University at Qinhuangdao [NORA names: China; Asia, East];
- [2] Key Laboratory of Dielectric and Electrolyte Functional Material Hebei Province [NORA names: China; Asia, East];
- [3] Northeastern University [NORA names: China; Asia, East];
- [4] Aalborg University [NORA names: AAU Aalborg University; University; Denmark; Europe, EU; Nordic; OECD];
- [5] Suzhou University of Science and Technology [NORA names: China; Asia, East]
Abstract
Potassium ion batteries (PIBs) have become a hotspot of research in the field of large-scale energy storage owing to their abundant resource endowments. Notably, the inherent advantage of PIBs development lies in their cost-effectiveness. Among them, low cost is the inevitable advantage of PIBs development. Herein, low-cost pure iron-based non-layered KFeO/KFeO biphase coexistence cathode materials for PIBs are synthesized through one-step calcination solid phase method. XRD results confirm the evident biphase coexistence of KFeO/KFeO when the content of K source is 0.3. As the K source content increases, the biphase coexistence is transformed into pure KFeO. The activation energy of KFeO/KFeO biphase coexistence sample is lower than that of pure KFeO by Kissinger method, providing evidence that the existence of KFeO can promote the reaction. TEM results show that the existence of KFeO does not affect the lattice fringes of KFeO, and the presence of two types of lattice fringes once again verifies the fact that KFeO/KFeO biphase coexistence. It is proved that the valence of Fe in KFeO/KFeO and pure KFeO is +3 by XANES. Comparative analysis with a high‑potassium content pure KFeO cathode material reveals that the synergistic effect of KFeO and KFeO can bring excellent electrochemical performance and improve the thermodynamic stability of the system. Moreover, GITT results show that the K diffusion coefficient of the KFeO/KFeO biphase coexistence material is significantly higher. The results of this study are sufficient to prove the feasibility of cheap iron as cathode materials for PIBs, and provide a new design idea for the development of low-cost and high-performance cathode materials.