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用于锂离子电容器的真空过滤MXene/碳纳米管复合薄膜

Vacuum-Filtered MXene/Carbon Nanotube Composite Films for Li-Ion Capacitors.

作者信息

Fei Haojie, Joseph Nikhitha, Vargun Elif, Micusik Matej, Sáha Petr

机构信息

Centre of Polymer Systems, Tomas Bata University in Zlín, Trida Tomase Bati 5678, 760 01 Zlín, Czech Republic.

Chemistry Department, Faculty of Science, Muğla Sıtkı Koçman University, Kotekli, 48000 Muğla, Turkey.

出版信息

ACS Omega. 2025 Aug 4;10(32):36527-36535. doi: 10.1021/acsomega.5c05174. eCollection 2025 Aug 19.

Abstract

MXene has garnered significant attention for its applications in electrochemical energy storage devices, such as supercapacitors and Li-ion capacitors, owing to its high electrical conductivity and relatively high capacitance/capacity in both aqueous and organic electrolytes. Utilizing its two-dimensional (2D) structure, this study prepared vacuum-filtered MXene/carbon nanotube (MXene/CNT) composite films for Li-ion capacitors. The incorporation of CNTs plays a critical role in mitigating the restacking of MXene flakes and enhancing the structural integrity of the films. The MXene/CNT films were first characterized by using various physicochemical methods and evaluated in electrochemical half-cells. A Li-ion capacitor was subsequently fabricated by using the MXene/CNT-12% film as the negative electrode and mesoporous carbon as the positive electrode. The fabricated Li-ion capacitor demonstrates a specific capacitance of 26 F g, an energy density of 40.2 Wh kg, and a power density of 375 W kg at a current density of 0.5 A g. However, the electrochemical performance of the device is still limited by the layer-by-layer architecture of the MXene-based films, which hinders the efficient transport of electrolyte ions vertically through the layers.

摘要

由于MXene具有高电导率以及在水性和有机电解质中都具有相对较高的电容/容量,因此它在超级电容器和锂离子电容器等电化学储能装置中的应用受到了广泛关注。本研究利用其二维(2D)结构制备了用于锂离子电容器的真空过滤MXene/碳纳米管(MXene/CNT)复合薄膜。碳纳米管的加入在减轻MXene薄片的重新堆叠和增强薄膜的结构完整性方面起着关键作用。首先使用各种物理化学方法对MXene/CNT薄膜进行表征,并在电化学半电池中进行评估。随后,以MXene/CNT-12%薄膜为负极、介孔碳为正极制备了锂离子电容器。所制备的锂离子电容器在电流密度为0.5 A g时,比电容为26 F g,能量密度为40.2 Wh kg,功率密度为375 W kg。然而,该器件的电化学性能仍然受到基于MXene的薄膜的逐层结构的限制,这种结构阻碍了电解质离子垂直穿过这些层的有效传输。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/44c1/12368816/f98ad29b7b41/ao5c05174_0001.jpg

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