Research Progress of Ternary System High Energy Storage Capacitors
DOI: https://doi.org/10.62381/ACS.HSMS2024.11
Author(s)
Yangkun Ma
Affiliation(s)
Shanghai University of Engineering Science, Shanghai, China
Abstract
As an important energy storage device, high energy storage capacitors have been widely used in electric vehicles, drones, new manufacturing of robots, wind power generation, smart grid and other energy fields. Among them, ternary system high energy storage capacitor has been widely concerned and studied because of its unique advantages. This paper summarizes the application prospect and the significance of research and development of high energy storage capacitors, introduces the basic principle and classification of high energy storage capacitors, and expounds the research status and existing problems of ternary system high energy storage capacitors. And the future development trend of ternary system high energy storage capacitors is briefly analyzed, and the main influencing factors and key nodes of research and development of ternary system high energy storage capacitors are summarized. As one of the important development directions in the field of energy storage and power transmission in the future, the main characteristics and broad application prospects of ternary system high energy storage capacitors are discussed and prospected. We look forward to greater breakthroughs in improving energy storage density, reducing costs, and improving charge and discharge speed and cycle life. At the same time, the emergence of new materials and manufacturing processes will also promote the further development and application of three-ring system high-energy storage capacitors.
Keywords
Ternary System; Basic Principle; Existing Problems; Development Prospect
References
[1]Chen D, Wang Q, Wang R, et al. Ternary oxide nanostructured materials for supercapacitors: a review. Journal of Materials Chemistry A, 2015, 3(19): 10158-10173.
[2]Palneedi H, Peddigari M, Hwang G T, et al. High‐performance dielectric ceramic films for energy storage capacitors: progress and outlook. Advanced Functional Materials, 2018, 28(42): 1803665.
[3]Li J, Xiao T, Yu X, et al. Graphene-based composites for supercapacitors//Journal of Physics: Conference Series. IOP Publishing, 2022, 2393(1): 012005.
[4]Wu Q, He T, Zhang Y, et al. Cyclic stability of supercapacitors: materials, energy storage mechanism, test methods, and device. Journal of Materials Chemistry A, 2021, 9(43): 24094-24147.
[5]Bijesh P, Selvaraj V, Andal V. A review on synthesis and applications of nano metal Oxide/porous carbon composite. Materials Today: Proceedings, 2022, 55: 212-219.
[6]Bichave M S, Kature A Y, Koranne S V, et al. Nano-metal oxides-activated carbons for dyes removal: A review. Materials Today: Proceedings, 2023, 77: 19-30.
[7]Hassan H, Iqbal M W, Alharthi S, et al. Improving the Energy Storage of Supercapattery Devices through Electrolyte Optimization for Mg (NbAgS) x (SO4) y Electrode Materials. Molecules, 2023, 28(12): 4737.
[8]Hegazy H H, Sana S S, Ramachandran T, et al. Covalent organic frameworks in supercapacitors: Unraveling the pros and cons for energy storage. Journal of Energy Storage, 2023, 74: 109405.
[9]Soltani M, Beheshti S H. A comprehensive review of lithium ion capacitor: development, modelling, thermal management and applications. Journal of Energy Storage, 2021, 34: 102019.
[10]Zhang Y X, Feng Q K, Zhong S L, et al. Digital twin accelerating development of metallized film capacitor: Key issues, framework design and prospects. Energy Reports, 2021, 7: 7704-7715.
[11]Wagner A C, Bohn N, Geßwein H, et al. Hierarchical structuring of NMC111-cathode materials in lithium-ion batteries: an in-depth study on the influence of primary and secondary particle sizes on electrochemical performance. ACS Applied Energy Materials, 2020, 3(12): 12565-12574.
[12]Chen Y, Wen K, Chen T, et al. Recent progress in all-solid-state lithium batteries: The emerging strategies for advanced electrolytes and their interfaces. Energy storage materials, 2020, 31: 401-433.
[13]Nunes W G, Pascon A M, Freitas B, et al. Electrochemical behavior of symmetric electrical double-layer capacitors and pseudocapacitors and identification of transport anomalies in the interconnected ionic and electronic phases using the impedance technique. Nanomaterials, 2022, 12(4): 676.
[14]Kumar R R, Bharatiraja C, Udhayakumar K, et al. Advances in batteries, battery modeling, battery management system, battery thermal management, SOC, SOH, and charge/discharge characteristics in EV applications. IEEE Access, 2023, 11: 105761-105809.
[15]Wen J, Zhao D, Zhang C. An overview of electricity powered vehicles: Lithium-ion battery energy storage density and energy conversion efficiency. Renewable Energy, 2020, 162: 1629-1648.
[16]Lasrado D, Ahankari S, Kar K K. Global trends in supercapacitors. Handbook of Nanocomposite Supercapacitor Materials III: Selection, 2021: 329-365.