Li Xin, Zhuang Chenfei, Xu Junmin, Li Liang, Xu Tingting, Dai Shuge, Wang Xinchang, Li Xinjian, Wang Ye
Key Laboratory of Material Physics, Ministry of Education, School of Physics and Microelectronics, Zhengzhou University, Zhengzhou 450001, China.
Institutes of Physical Science and Information Technology, Anhui University, Hefei 230601, China.
Nanoscale. 2021 May 6;13(17):8199-8209. doi: 10.1039/d1nr00993a.
Potassium-ion battery (KIB) is one of the emerging electrochemical energy storage technologies due to the abundance, low cost, and low redox potential of K. One of the most promising cathodes of KIBs is a layered vanadium-based compound, but it often suffers from fast capacity decay during repeated cycling. Herein, a K0.5V2O5/CNTs hybrid film composed of K0.5V2O5 nanobelt and carbon nanotube (CNT) network was synthesized by an electrostatic self-assembly and vacuum filtration process, and further used as the cathode in KIBs. The K0.5V2O5/CNTs cathode possessed a flexible and interconnected network structure, which not only offered fast kinetics for electron transfer and ion transportation, but also provided an elastic medium to buffer the large volume change of the K0.5V2O5 nanobelts during cycling. As a cathode for KIBs, the K0.5V2O5/CNTs electrode showed a reversible discharge capacity of ∼90 mA h g-1 at 50 mA g-1 and exhibited good cycling stability (88.8% capacity retention for 100 cycles at 50 mA g-1, 82.2% capacity retention for 300 cycles at 500 mA g-1) and excellent rate performance of ∼62 mA h g-1 at 500 mA g-1. K-Ion full battery testing further confirmed its good electrochemical performance by presenting a high reversible discharge capacity (68 mA h g-1 at 50 mA g-1) and long-term retention (>80% after 80 cycles). Interestingly, a cable-shaped KIB with the flexible K0.5V2O5/CNTs film as the cathode electrode was assembled and showed its further application potential as a power source for wearable electronics.
钾离子电池(KIB)由于钾资源丰富、成本低且氧化还原电位低,是新兴的电化学储能技术之一。KIB最有前景的阴极材料之一是层状钒基化合物,但它在反复循环过程中常常存在快速的容量衰减问题。在此,通过静电自组装和真空过滤工艺合成了一种由K0.5V2O5纳米带和碳纳米管(CNT)网络组成的K0.5V2O5/CNTs混合薄膜,并将其进一步用作KIB的阴极。K0.5V2O5/CNTs阴极具有灵活且相互连接的网络结构,这不仅为电子转移和离子传输提供了快速动力学,还提供了一种弹性介质来缓冲K0.5V2O5纳米带在循环过程中的大体积变化。作为KIB的阴极,K0.5V2O5/CNTs电极在50 mA g-1时显示出约90 mA h g-1的可逆放电容量,并表现出良好的循环稳定性(在50 mA g-1下100次循环容量保持率为88.8%,在500 mA g-1下300次循环容量保持率为82.2%)以及在500 mA g-1时约62 mA h g-1的优异倍率性能。钾离子全电池测试通过呈现高可逆放电容量(在50 mA g-1时为68 mA h g-1)和长期保持率(80次循环后>80%)进一步证实了其良好的电化学性能。有趣的是,组装了一种以柔性K0.5V2O5/CNTs薄膜为阴极电极的缆线型KIB,并展示了其作为可穿戴电子产品电源的进一步应用潜力。