Bouachma Soraya, Zheng Xiaoying, Moreno Zuria Alonso, Kechouane Mohamed, Gabouze Noureddine, Mohamedi Mohamed
Centre Énergie, Matériaux et Télécommunications (EMT), Institut National de la Recherche Scientifique (INRS), 1650 Boulevard Lionel Boulet, Varennes, QC J3X 1S2, Canada.
Laboratory of Material Physics, Faculty of Physics, University of Science and Technology Houari Boumediene (U.S.T.H.B.), P.O. Box 32, El-Alia, Bab Ezzouar, Algiers DZ-16111, Algeria.
Materials (Basel). 2024 Aug 16;17(16):4079. doi: 10.3390/ma17164079.
Efficient and sustainable energy storage remains a critical challenge in the advancement of energy technologies. This study presents the fabrication and electrochemical evaluation of a self-supporting electrode material composed of MnO nanorods grown directly on a carbon paper and carbon nanotube (CNT) substrate using a hydrothermal method. The resulting CNT/MnO electrodes exhibit a unique structural architecture with a high surface area and a three-dimensional hierarchical arrangement, contributing to a substantial electrochemical surface area. Electrochemical testing reveals remarkable performance characteristics, including a specific capacitance of up to 316.5 F/g, which is 11 times greater than that of conventional CP/MnO electrodes. Moreover, the CNT/MnO electrodes demonstrate outstanding retention capacity, exhibiting a remarkable 165% increase over 10,000 cycles. Symmetric supercapacitor devices utilizing CNT/MnO electrodes maintain a large voltage window of 3 V and a specific capacitance as high as 200 F/g. These results underscore the potential of free-standing CNT/MnO electrodes to advance the development of high-performance supercapacitors, which can be crucial for efficient and sustainable energy storage solutions in various industrial and manufacturing applications.
高效且可持续的能量存储仍然是能源技术发展中的一项关键挑战。本研究展示了一种自支撑电极材料的制备及其电化学评估,该材料由通过水热法直接生长在碳纸和碳纳米管(CNT)基底上的MnO纳米棒组成。所得的CNT/MnO电极呈现出具有高表面积和三维分级排列的独特结构架构,有助于形成较大的电化学表面积。电化学测试揭示了显著的性能特征,包括高达316.5 F/g的比电容,这比传统的CP/MnO电极高出11倍。此外,CNT/MnO电极表现出出色的保持容量,在10000次循环中显著增加了165%。使用CNT/MnO电极的对称超级电容器器件保持3 V的大电压窗口和高达200 F/g的比电容。这些结果强调了独立的CNT/MnO电极在推进高性能超级电容器发展方面的潜力,这对于各种工业和制造应用中的高效且可持续的能量存储解决方案可能至关重要。