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微型超级电容器的进展:迈向为嵌入式电子产品供电的技术梦想的真正快速小型化设备?

Advances on Microsupercapacitors: Real Fast Miniaturized Devices toward Technological Dreams for Powering Embedded Electronics?

作者信息

Dinh Khac Huy, Roussel Pascal, Lethien Christophe

机构信息

Institut d'Electronique, de Microélectronique et de Nanotechnologies, Université de Lille, CNRS, Université Polytechnique Hauts-de-France, UMR 8520 - IEMN, F-59000 Lille, France.

Unité de Catalyse et de Chimie du Solide (UCCS), Université de Lille, CNRS, Centrale Lille, Université d'Artois, UMR 8181 - UCCS, F-59000 Lille, France.

出版信息

ACS Omega. 2023 Mar 2;8(10):8977-8990. doi: 10.1021/acsomega.2c07549. eCollection 2023 Mar 14.

Abstract

Microsupercapacitors (MSCs) have emerged as the next generation of electrochemical energy storage sources for powering miniaturized embedded electronic and Internet of Things devices. Despite many advantages such as high-power density, long cycle life, fast charge/discharge rate, and moderate energy density, MSCs are not at the industrial level in 2022, while the first MSC was published more than 20 years ago. MSC performance is strongly correlated to electrode material, device configuration, and the used electrolyte. There are therefore many questions and scientific/technological locks to be overcome in order to raise the technological readiness level of this technology to an industrial stage: the type of electrode material, device topology/configuration, and use of a solid electrolyte with high ionic conductivity and photopatternable capabilities are key parameters that we have to optimize in order to fulfill the requirements. Carbon-based, pseudocapacitive materials such as transition metal oxide, transition metal nitride, and MXene used in symmetric or asymmetric configurations are extensively investigated. In this Review, the current progress toward the fabrication of MSCs is summarized. Challenges and prospectives to improve the performance of MSCs are discussed.

摘要

微型超级电容器(MSCs)已成为为小型嵌入式电子设备和物联网设备供电的下一代电化学储能源。尽管具有许多优点,如高功率密度、长循环寿命、快速充放电速率和适度的能量密度,但在2022年,MSCs尚未达到工业水平,而首个MSCs在20多年前就已发表。MSCs的性能与电极材料、器件结构和所使用的电解质密切相关。因此,为了将该技术的技术就绪水平提升至工业阶段,仍有许多问题和科学/技术障碍需要克服:电极材料的类型、器件拓扑结构/配置以及使用具有高离子电导率和可光图案化能力的固体电解质是我们必须优化以满足要求的关键参数。广泛研究了用于对称或不对称配置的碳基赝电容材料,如过渡金属氧化物、过渡金属氮化物和MXene。在本综述中,总结了MSCs制造方面的当前进展。讨论了提高MSCs性能的挑战和前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9def/10018517/cadf73ede67b/ao2c07549_0001.jpg

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