Ganapathy Rama Subramanian Anugraha, Thangaraj Balu, Muthukurumban Nagarajan, Chelliah Parvathiraja, Rethnamuthu Sree Devi
Research Department of Physics, V. O. Chidambaram College, Thoothukudi, 628008, Tamil Nadu, India.
Manonamaniam Sundaranar University, Abishekapatti, Tirunelveli, Tamil Nadu, India.
J Fluoresc. 2025 Aug 22. doi: 10.1007/s10895-025-04449-x.
Tri-metallic MnO-ZnO-CeO nanocomposites were successfully synthesized via a co-precipitation method. Structural characterization confirmed the formation of orthorhombic MnO, hexagonal ZnO, and cubic CeO phases, with an average crystallite size of approximately 18 nm. The nanocomposites exhibited a narrow band gap of 2.36 eV, enabling efficient visible-light absorption and enhanced photocatalytic activity. FTIR analysis confirmed M-O stretching vibrations, while photoluminescence spectra revealed defect-related emission bands attributed to newly formed energy levels. Nitrogen adsorption-desorption isotherms indicated a high surface area with a uniform mesoporous structure, featuring a pore diameter centered at 2.450 nm. HR-TEM analysis showed spherical particles with a coarse, granular nanostructure and an average particle size of ~ 37 nm. Elemental mapping and XPS confirmed the presence and oxidation states of Mn, Zn, Ce, and O. Electrochemical studies revealed significant pseudocapacitive behavior, with a maximum areal capacitance of 111.26 mF/cm at 5 mV/s and minimal charge transfer resistance. Antibacterial assays demonstrated strong activity against Staphylococcus aureus, with a maximum inhibition zone of 14 mm. Cytotoxicity evaluation showed a concentrate dependent response, reducing MCF-7 cell viability to 12% at 1000 µg/mL. Photocatalytic degradation of methylene blue reached 89.8% within 40 min, following pseudo-first-order kinetics. The effects of pH, catalyst dosage, and dye concentration were systematically examined, and reusability tests confirmed the catalyst stability. These results underscore the potential of MnO-ZnO-CeO nanocomposites for effective wastewater treatment applications.
通过共沉淀法成功合成了三金属MnO-ZnO-CeO纳米复合材料。结构表征证实形成了正交晶系MnO、六方晶系ZnO和立方晶系CeO相,平均微晶尺寸约为18纳米。纳米复合材料表现出2.36电子伏特的窄带隙,能够实现高效的可见光吸收并增强光催化活性。傅里叶变换红外光谱(FTIR)分析证实了M-O伸缩振动,而光致发光光谱显示了与新形成的能级相关的缺陷发射带。氮吸附-解吸等温线表明具有高比表面积和均匀的介孔结构,孔径集中在2.450纳米。高分辨率透射电子显微镜(HR-TEM)分析显示为球形颗粒,具有粗糙的颗粒状纳米结构,平均粒径约为37纳米。元素映射和X射线光电子能谱(XPS)证实了Mn、Zn、Ce和O的存在及氧化态。电化学研究表明具有显著的赝电容行为,在5毫伏/秒时最大面积电容为111.26毫法/平方厘米,电荷转移电阻最小。抗菌试验表明对金黄色葡萄球菌具有很强的活性,最大抑菌圈为14毫米。细胞毒性评估显示出浓度依赖性反应,在1000微克/毫升时将MCF-7细胞活力降低至12%。亚甲基蓝的光催化降解在40分钟内达到89.8%,遵循准一级动力学。系统研究了pH值、催化剂用量和染料浓度的影响,可重复使用性测试证实了催化剂的稳定性。这些结果强调了MnO-ZnO-CeO纳米复合材料在有效废水处理应用中的潜力。