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鉀離子電池的研究進展及展望

Research progress and prospect of potassium-ion batteries

  • 摘要: 鋰離子電池(LIBS)已經廣泛應用到便攜式電子產品和電動汽車上。然而,隨著鋰資源的開采使用,鋰離子電池的成本也在逐漸增加。相比之下,地殼中較高的鉀含量使得鉀離子電池(KIB)成本相對較低。進而,鉀離子電池作為一種新型低成本儲能器件受到了廣泛關注。但鉀離子的半徑較大,導致充放電過程中,離子嵌入/脫出的動力學性能較差。因此,電池電極材料的選擇面臨著新的挑戰。在對鉀離子電池電極材料進行分類和總結的基礎之上,重點介紹了石墨及各種形式的碳材料、過渡金屬氧化物、合金類等負極材料以及普魯士藍、層狀金屬氧化物、聚陰離子型化合物等正極材料的研究進展,并對鉀離子電池的發展進行了展望,以期對高性能鉀離子電池的發展提供新思路。

     

    Abstract: Development and utilization of renewable energy sources have gain great progress in recent years, which lead to increasing demands for large scale energy storage systems. Lithium-ion batteries have been widely used in portable electronic devices and electric vehicles. However, with the exploitation of the Earth’s lithium resources, the cost of lithium-ion batteries is gradually increasing. In contrast, the higher terrestrial potassium content promises inexpensive potassium-ion batteries, and the chemical properties of potassium and lithium ions are similar. Meanwhile, the low redox potential of K promises a high working voltage of potassium ion batteries. Thus, potassium-ion batteries have attracted considerable attention as a capable battery technology. However, the large radius of the potassium ion leads to unsatisfactory ion intercalation and extraction behavior during charging and discharging processes, resulting in poor cycling performance, unsatisfactory rate ability, and low capacity. The challenge remains to explore capable electrode materials for potassium-ion batteries to achieve a high energy density and power density. This review summarizes the anode and cathode materials of potassium-ion batteries in recent reports, including the research progress of graphite and other carbon materials, transition metal oxides/sulfides, alloys, and other anode materials, as well as Prussian blue, layered metal oxides, and polyanionic compound cathode materials, which will provide new ideas for developing high-performance potassium-ion batteries. We also discuss the potassium ion storage mechanism in these electrode materials. This review also demonstrates the approaches (nanotechnology, heteroatom doping, carbon coating, composite fabrication) to further improve the electrochemical performance of the cathode and anode. In addition, we point out the key factors for potassium ion batteries performance, such as the design of anode materials, exploitation of novel cathode materials, and optimization of full potassium ion cells fabrication, which would provide new thought for the development of potassium ion batteries with high performances.

     

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