Hydrothermal synthesis of Cu2CoSnS4 nanoparticles: characterization and their applications of electrochemical, antibacterial and photocatalytic performances

Selvam Manjula, G. Sivakumar, Panneerselvam Dhamodharan, Ayyar Dinesh, S. Jaganathan, Manikandan Ayyar
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Abstract

Abstract A hydrothermal technique was used to successfully synthesize tetragonal Cu2CoSnS4 (CCTS) nanoparticles and investigate the effect of various thiourea concentrations on structural, morphological and optical properties. XRD analysis revealed the formation of tetragonal CCTS nanoparticles and the average crystallite size (nm) varied from 26 to 40 nm. The Raman studies confirmed the vibrational modes of the CCTS nanoparticles. The FE-SEM images revealed that the thiourea concentrations induced morphological changes in the CCTS nanoparticles, which exhibited the nanosheets changing into spherical structures. TEM images indicated that the CCTS sample had a spherical structure and the SAED pattern demonstrated a polycrystalline nature. The valance states of metallic species, such as Cu+ and Co2+ were further confirmed by XPS. The optical band gap (1.53 eV) was calculated from UV–Visible data and the obtained bandgap value from the literature. The electrochemical measurements of the CCTS TU-10 electrode exhibited pseudocapacitive behavior with a notable specific capacitance of 198 Fg−1 at a scan rate of 10 mV/S along with favorable electrocatalytic activity. In the photocatalytic application, when compared to MB dye (78 %), the CCTS catalyst was found to have a higher degradation efficiency toward CV dye (84 %). For antibacterial studies, the Vibrio parahaemolyticus bacteria exhibited the maximum zone of inhibition at 20 mm for 100 μg/ml. Finally, the experimental results suggested that the synthesized CCTS nanoparticles had better electrochemical, photocatalytic, and antibacterial properties.
水热合成 Cu2CoSnS4 纳米粒子:表征及其在电化学、抗菌和光催化性能方面的应用
摘要 采用水热技术成功合成了四方 Cu2CoSnS4(CCTS)纳米粒子,并研究了不同浓度的硫脲对其结构、形态和光学特性的影响。XRD 分析显示形成了四方 Cu2CoSnS4 纳米粒子,平均结晶尺寸(nm)在 26 到 40 nm 之间。拉曼研究证实了 CCTS 纳米粒子的振动模式。FE-SEM 图像显示,硫脲浓度引起了 CCTS 纳米粒子的形态变化,纳米片状结构变成了球状结构。TEM 图像显示 CCTS 样品具有球形结构,SAED 图样显示其具有多晶性质。XPS 进一步证实了 Cu+ 和 Co2+ 等金属物种的价态。光带隙(1.53 eV)是根据紫外-可见光数据和文献中获得的带隙值计算得出的。CCTS TU-10 电极的电化学测量结果表明,在 10 mV/S 的扫描速率下,其具有 198 Fg-1 的显著比电容,同时还具有良好的电催化活性。在光催化应用中,与 MB 染料(78%)相比,CCTS 催化剂对 CV 染料的降解效率更高(84%)。在抗菌研究中,副溶血性弧菌在 100 μg/ml 条件下的最大抑菌区为 20 mm。最后,实验结果表明,合成的 CCTS 纳米粒子具有更好的电化学、光催化和抗菌性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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