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深入研究氧化锌纳米结构在紫外线照射下对不同染料光降解的尺寸效应:抗癌应用。

In-depth investigation the size effect of zinc oxide nanostructures on the photodegradation of different dyes under UV-irradiation: anticancer application.

作者信息

Elsisi Moustafa E, Mostafa Mai Mohamed, Abdella Hanan, Khalil Aia E, Soror Abdelfatah Salah

机构信息

Physics Department, Faculty of Science, Zagazig University, Zagazig, 44519, Egypt.

Botany and Microbiology Department, Faculty of Science, Zagazig University, Zagazig, 44519, Egypt.

出版信息

Sci Rep. 2025 Aug 28;15(1):31669. doi: 10.1038/s41598-025-16270-4.

Abstract

The aim of this research was to prepare a different particle sizes of zinc oxide nanostructures by two different methods. The zinc oxide nanoparticle (ZnO NP) was successfully prepared by a green synthesis technique but the zinc oxide quantum dot (ZnO QD) was successfully prepared by a chemical method. The structure, composition and morphology of the prepared different shapes of ZnO nanostructures have been characterized by the means of X-ray diffractograms (XRD), high resolution transmission electron microscope (HRTEM), Energy Dispersive x-ray (EDX), UV-Vis spectroscopy and Fourier transform infrared spectroscopy (FTIR). From UV-Vis spectroscopy studies we noticed that the optical band gap energy of ZnO nanostructures was decreased by increasing an irradiation time. The removal of complex organic contaminants and pollutants from water, the heterogeneous photocatalytic degradation of methylene blue (MB), Fluorescein and Rhodamine 6G (Rh 6G) dyes were studied using ZnO NP and ZnO QD as a derived catalyst. We had studied the impact of ZnO NP and ZnO QD as a catalyst to enhance the photocatalytic activity of different organic dyes under UV-Vis irradiation and we observed that the photodegradation percentage of organic dyes was rapidly increased by increasing UV irradiation time in both two shapes of ZnO nanostructures. ZnO QD behave as the best photocatalyst for successfully photodegraded due to the smallest size of ZnO QD has a higher photocatalytic activity than the large particle size of ZnO NP. So, it is better to use the ZnO QD as a removal dyes and pollutants in the wastewater application. Also, we have assessed the cytotoxicity of ZnO NP and ZnO QD against two cell lines, (T-47) breast cancer carcinoma, and (DU-145) prostate cancer cell compared to Human skin fibroblast (HSF). The proliferation of cancer cells using MTT assay clarified that both cancer cells (T-47), (DU-145) as well as (HSF) normal cell line are regularly inhibited as they grow on different concentrations of ZnQ QD and ZnQ NP. The maximum inhibitory effect of both were recorded at concentration of 100 µg/ml (62.63, 79.72 and 42.59% and 72.68, 83.28, 18.12 µg/ml) in case of ZnQ QD and ZnQ NP respectively. It was cleared that ZnQ NP was more potent for test cancer cell lines, this was confirmed by IC since it was (18.12,13.3,74.86) in ZnO NP compared with (42.59,17.05 and 76.4) in ZnQ QD respectively. Finally, it was proved that the ZnO NP behave as a good anticancer nanomaterial than ZnO QD. This means ZnO NP are superior for anticancer applications if compared with ZnO QDs.

摘要

本研究的目的是通过两种不同方法制备不同粒径的氧化锌纳米结构。采用绿色合成技术成功制备了氧化锌纳米颗粒(ZnO NP),并通过化学方法成功制备了氧化锌量子点(ZnO QD)。通过X射线衍射图(XRD)、高分辨率透射电子显微镜(HRTEM)、能量色散X射线(EDX)、紫外-可见光谱和傅里叶变换红外光谱(FTIR)对所制备的不同形状的ZnO纳米结构的结构、组成和形态进行了表征。通过紫外-可见光谱研究我们注意到,随着辐照时间的增加,ZnO纳米结构的光学带隙能量降低。以ZnO NP和ZnO QD为衍生催化剂,研究了水中复杂有机污染物和污染物的去除、亚甲基蓝(MB)、荧光素和罗丹明6G(Rh 6G)染料的多相光催化降解。我们研究了ZnO NP和ZnO QD作为催化剂对紫外-可见辐射下不同有机染料光催化活性的影响,并且观察到在两种形状的ZnO纳米结构中,随着紫外辐照时间的增加,有机染料的光降解率迅速提高。由于ZnO QD尺寸最小,具有比大粒径的ZnO NP更高的光催化活性,因此ZnO QD表现为成功光降解的最佳光催化剂。所以,在废水处理中使用ZnO QD去除染料和污染物更好。此外,我们评估了ZnO NP和ZnO QD对两种细胞系(T-47)乳腺癌细胞和(DU-145)前列腺癌细胞相对于人皮肤成纤维细胞(HSF)的细胞毒性。使用MTT法对癌细胞增殖的研究表明,当癌细胞(T-47)、(DU-145)以及正常细胞系(HSF)在不同浓度的ZnQ QD和ZnQ NP上生长时,它们的生长均受到正常抑制。在ZnQ QD和ZnQ NP的情况下,最大抑制作用分别在浓度为100 μg/ml(62.63、79.72和42.59%以及72.68、83.28、18.12 μg/ml)时记录。结果表明,ZnQ NP对测试癌细胞系更有效,这通过IC得到证实,因为ZnO NP中的IC分别为(18.12、13.3、74.86),而ZnQ QD中的IC分别为(42.59、17.05和76.4)。最后,证明了ZnO NP比ZnO QD表现为更好的抗癌纳米材料。这意味着与ZnO QDs相比,ZnO NP在抗癌应用中更具优势。

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