Su Die, Pei Yi, Liu Li, Liu Zhixiao, Liu Junfang, Yang Min, Wen Jiaxing, Dai Jing, Deng Huiqiu, Cao Guozhong
National Base for International Science and Technology Cooperation, National Local Joint Engineering Laboratory for Key Materials of New Energy Storage Battery, Hunan Province Key Laboratory of Electrochemical Energy Storage and Conversion, School of Chemistry, Xiangtan University, Xiangtan, 411105, People's Republic of China.
Department of Materials Science and Engineering, University of Washington, Seattle, WA, 98195-2120, USA.
Nanomicro Lett. 2021 Apr 9;13(1):107. doi: 10.1007/s40820-021-00632-4.
Wearable and portable mobile phones play a critical role in the market, and one of the key technologies is the flexible electrode with high specific capacity and excellent mechanical flexibility. Herein, a wire-in-wire TiO/C nanofibers (TiO ww/CN) film is synthesized via electrospinning with selenium as a structural inducer. The interconnected carbon network and unique wire-in-wire nanostructure cannot only improve electronic conductivity and induce effective charge transports, but also bring a superior mechanic flexibility. Ultimately, TiO ww/CN film shows outstanding electrochemical performance as free-standing electrodes in Li/K ion batteries. It shows a discharge capacity as high as 303 mAh g at 5 A g after 6000 cycles in Li half-cells, and the unique structure is well-reserved after long-term cycling. Moreover, even TiO has a large diffusion barrier of K, TiO ww/CN film demonstrates excellent performance (259 mAh g at 0.05 A g after 1000 cycles) in K half-cells owing to extraordinary pseudocapacitive contribution. The Li/K full cells consisted of TiO ww/CN film anode and LiFePO/Perylene-3,4,9,10-tetracarboxylic dianhydride cathode possess outstanding cycling stability and demonstrate practical application from lighting at least 19 LEDs. It is, therefore, expected that this material will find broad applications in portable and wearable Li/K-ion batteries.
可穿戴和便携式移动电话在市场中发挥着关键作用,其中一项关键技术是具有高比容量和出色机械柔韧性的柔性电极。在此,以硒作为结构诱导剂,通过静电纺丝合成了一种线中有线的TiO/C纳米纤维(TiO ww/CN)薄膜。相互连接的碳网络和独特的线中有线纳米结构不仅可以提高电子导电性并诱导有效的电荷传输,还具有出色的机械柔韧性。最终,TiO ww/CN薄膜在Li/K离子电池中作为独立电极表现出优异的电化学性能。在Li半电池中,经过6000次循环后,在5 A g的电流密度下,其放电容量高达303 mAh g,并且在长期循环后独特结构得以保留。此外,尽管TiO对K具有较大的扩散势垒,但由于其非凡的赝电容贡献,TiO ww/CN薄膜在K半电池中仍表现出优异的性能(在0.05 A g的电流密度下,经过1000次循环后为259 mAh g)。由TiO ww/CN薄膜阳极和LiFePO/苝-3,4,9,10-四羧酸二酐阴极组成的Li/K全电池具有出色的循环稳定性,并展示了至少点亮19个发光二极管的实际应用。因此,预计这种材料将在便携式和可穿戴Li/K离子电池中得到广泛应用。