Akshay Manohar, Jyothilakshmi Shaji, Lee Yun-Sung, Aravindan Vanchiappan
Department of Chemistry, Indian Institute of Science Education and Research (IISER), Tirupati, Andhra Pradesh, 517507, India.
School of Chemical Engineering, Chonnam National University, Gwangju, 61186, Republic of Korea.
Small. 2024 Apr;20(15):e2307248. doi: 10.1002/smll.202307248. Epub 2023 Nov 22.
Lithium-ion hybrid capacitors (LICs) have become promising electrochemical energy storage systems that overcome the limitations of lithium-ion batteries and electrical double-layer capacitors. The asymmetric combination of these devices enhances the overall electrochemical performance by delivering simultaneous energy and power capabilities. Lithium titanate (LiTiO, LTO), a spinel zero-strain material, has been studied extensively as an anode material for LIC applications because of its high-rate capability, negligible volume change, and enhanced cycling performance. Here, the different synthetic methods and modifications of the intercalation-type LTO to enhance the overall electrochemical performance of LICs are mainly focused. Moreover, the cathodic part (i.e., the activated carbon derived from various sources, including natural products, polymers, and inorganic materials) is also dealt with as it contributes substantially to the overall performance of the LIC. Not only do the anode and cathode, but also the electrolytes have a substantial influence on LIC performance. The electrolytes used in LTO-based LICs as well as in flexible and bendable configurations are also mentioned. Overall, the previous work along with other available reports on LTO-based LICs in a simplified way is analyzed.
锂离子混合电容器(LIC)已成为很有前景的电化学储能系统,它克服了锂离子电池和双电层电容器的局限性。这些器件的不对称组合通过同时提供能量和功率能力,提高了整体电化学性能。钛酸锂(LiTiO,LTO)是一种尖晶石零应变材料,由于其高倍率性能、可忽略不计的体积变化和增强的循环性能,已被广泛研究用作LIC应用的负极材料。在此,主要关注插层型LTO的不同合成方法和改性,以提高LIC的整体电化学性能。此外,还讨论了阴极部分(即由包括天然产物、聚合物和无机材料在内的各种来源衍生的活性炭),因为它对LIC的整体性能有很大贡献。不仅阳极和阴极,电解质对LIC性能也有重大影响。还提到了基于LTO的LIC以及柔性和可弯曲配置中使用的电解质。总体而言,以简化的方式分析了先前的工作以及其他关于基于LTO的LIC的现有报告。