Colak Suleyman Gokhan, Simsek Utku Bulut, Aydın Hamide, Kurtan Ümran, Demir Muslum
Department of Biomedical Engineering, Faculty of Engineering and Natural Sciences, Iskenderun Technical University, Hatay, Turkey.
Department of Chemical Engineering, Bogazici University, TR-34342, Istanbul, Turkey.
J Colloid Interface Sci. 2025 Mar 15;682:478-490. doi: 10.1016/j.jcis.2024.11.207. Epub 2024 Nov 30.
The latest assessments emphasize the pressing need for effective energy storage systems as a result of limited energy availability and environmental apprehensions. This work investigates the production of a new composite material, CuZnSnS (CZTS)/functionalized-Multi-walled Carbon Nanotube (f-MWCNT), using a hydrothermal method. We analyze the physical and chemical characteristics of nanocomposite materials (CZTS (10), CZTS (20), and CZTS (40)) produced with 10 %, 20 %, and 40 % f-MWCNT by weight, respectively, as possible electrodes for supercapacitors. This work is the first to investigate the electrochemical properties of CZTS/f-MWCNT nanocomposites in this specific situation.Electrochemical measurements demonstrated considerable performance increases, notably for the CZTS (20) sample, which achieved a specific capacitance of 171F/g at a scan rate of 5 mV/s in a 6 M KOH aqueous electrolyte. Even at increased scan rates, the capacitance remained high at 94F/g, exhibiting strong rate capability. After 3000 cycles, the nanocomposite preserved 99 % of its original capacity. These findings imply that the excellent conductivity and large surface area of f-MWCNT greatly decrease charge transfer and ion diffusion resistance, boosting the nanocomposite's capacitance performance. The CZTS/f-MWCNT nanocomposite has significant promise for use in energy storage and conversion devices.
由于能源供应有限和环境问题,最新评估强调了对有效储能系统的迫切需求。这项工作研究了使用水热法制备一种新型复合材料——铜锌锡硫(CZTS)/功能化多壁碳纳米管(f-MWCNT)。我们分析了分别以10%、20%和40%重量比的f-MWCNT制备的纳米复合材料(CZTS(10)、CZTS(20)和CZTS(40))作为超级电容器可能电极的物理和化学特性。这项工作首次研究了在这种特定情况下CZTS/f-MWCNT纳米复合材料的电化学性能。电化学测量表明性能有显著提高,特别是对于CZTS(20)样品,在6M KOH水溶液电解质中,扫描速率为5mV/s时,其比电容达到171F/g。即使在扫描速率增加时,电容仍保持在94F/g的高水平,表现出很强的倍率性能。经过3000次循环后,纳米复合材料保留了其原始容量的99%。这些发现表明,f-MWCNT优异的导电性和大表面积大大降低了电荷转移和离子扩散电阻,提高了纳米复合材料的电容性能。CZTS/f-MWCNT纳米复合材料在储能和转换装置中具有巨大的应用前景。