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首页> 外文期刊>Journal of Sol-Gel Science and Technology >Studying the structural, morphological, and optical properties of CuS:Ni nanostructure prepared by a hydrothermal method for biological activity
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Studying the structural, morphological, and optical properties of CuS:Ni nanostructure prepared by a hydrothermal method for biological activity

机译:研究CUS:Ni纳米结构的结构,形态学和光学性质,通过用于生物活性的水热法制备

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摘要

In recent years, copper sulfide has attracted great interest in biological application, due to its biocompatibility and low toxicity. Undoped and nickel (Ni)-doped copper sulfide nanostructures were synthesized using a hydrothermal method at 150 degrees C for 15h. XRD patterns show that all samples have confirmed the formation of a hexagonal phase. Absorbance spectra were measured by using a UV-vis spectrophotometer. The optical bandgap energy of CuS nanostructure decreased with increasing Ni doping concentration. Their optical bandgap energies were 3.2, 3.21, 2.9, and 2.9eV for undoped and Ni-doped copper sulfide nanostructures with concentrations of 1, 3, and 5%, respectively. The antibacterial activity of CuS nanostructure against E. coli, P. aeruginosa, and S. aureus was evaluated by zone of inhibition. The test revealed that the minimum concentration of CuS nanostructure has a strong antibacterial activity against Gram-positive bacteria than for Gram-negative bacteria. Antitumor treatment was applied based on employing CuS nanostructures by exploiting their unique optical and morphological properties as therapeutic agents against rhabdomyosarcoma (RD) and murine fibroblast (L20B) cancer cell lines without using laser. The cytotoxicity effect was evaluated by MTT assay; the results demonstrated that CuS nanostructure with 1% Ni doping exhibits more toxicity effect than undoped and doped nanostructures, with 3 and 5% for all particle concentrations, where cytotoxicity reaches 34.3% at 0.125mg/ml, being the most influential concentration, which could be a promising agent for cancer treatment.
机译:近年来,由于其生物相容性和低毒性,硫化铜对生物应用感兴趣。在150℃下使用水热法合成未掺杂和镍(Ni) - 掺杂的硫化铜纳米结构15小时。 XRD图案表明,所有样品都证实了六边形相的形成。通过使用UV-Vis分光光度计测量吸光度光谱。 CU纳米结构的光学带隙能量随着Ni掺杂浓度的增加而降低。它们的光学带隙能量为3.2,3.21,2.9和2.9EV,对于未掺杂的和Ni掺杂的硫化铜硫化铜纳米结构,分别为1,3和5%。抑制区评估了对大肠杆菌,P.铜绿假单胞菌和金黄色葡萄球菌的CUS纳米结构的抗菌活性。该测试显示CU纳米结构的最小浓度对革兰氏阳性细菌具有强烈的抗菌活性而不是革兰氏阴性细菌。基于使用CUS纳米结构来施加抗肿瘤治疗,通过利用其独特的光学和形态特性作为抗横纹肌肉瘤(RD)和鼠成纤维细胞(L20B)癌细胞系而不使用激光。通过MTT测定评估细胞毒性效应;结果表明,具有1%Ni掺杂的CU纳米结构表现出比未掺杂和掺杂的纳米结构的毒性效果更多,对于所有颗粒浓度为3和5%,其中细胞毒性达到0.125mg / ml的34.3%,是最具影响力的浓度成为癌症治疗的有希望的代理人。

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