Mohan A Chithra, Athira A, Nair Bindu P, Sivasubramanian G, Sreekanth K M, Anoop Gopinathan, Sree Sreeprasanth Pulinthanathu, Sreedhar K M
Department of Chemistry, Amrita Vishwa Vidyapeetham, Amritapuri, Kerala, 690525, India.
Department of Chemistry, V.S.B. College of Engineering Technical Campus, Coimbatore, Tamil Nadu, 642109, India.
Sci Rep. 2024 Dec 30;14(1):32067. doi: 10.1038/s41598-024-83779-5.
Recent advancements in material science have aimed to create novel nanomaterials with unique properties and potential applications across diverse domains. By deciphering the complexities of the versatile nanomaterial, MgO, the study aims to deepen our comprehension of the synergistic effects induced by dual doping in MgO, thus propelling the advancement of innovative technologies and materials with broad applications. The present investigation employed a facile chemical precipitation and coprecipitation approach to synthesize pure MgO and Ni, Zn dual doped MgO, varying Ni concentration ranging between 2% and 10% and maintaining a constant Zn concentration at 20%. Structural and optical properties were investigated using field emission scanning electron microscope, energy dispersed X-ray analysis, powder X-ray diffraction, absorption spectra, besides photoluminescent analysis. Crystallite size, strain value then dislocation density of the samples were estimated by Scherrer equation and Williamson-Hall method. Tauc plot analysis revealed that codoped samples reduces the bandgap of MgO. The PL emission spectra exhibited a broad emission originating from various defect levels induced by Ni and Zn codoping in MgO. Ferromagnetism was also induced in Ni and Zn codoped samples with a saturation magnetization up to 5.4668 × 10 emu for 10%Ni-20%Zn doped MgO. The antibacterial studies were carried out and all samples were effective against the Staphylococcus aureus strain (ATCC 25923). This thorough investigation highlights the multidimensional impact of Ni, Zn dual doping on the characteristics of MgO nanoparticles, offering valuable insights for diverse applications in materials research.
材料科学的最新进展旨在创造具有独特性能和跨领域潜在应用的新型纳米材料。通过解读多功能纳米材料氧化镁的复杂性,该研究旨在加深我们对氧化镁中双掺杂诱导的协同效应的理解,从而推动具有广泛应用的创新技术和材料的发展。本研究采用简便的化学沉淀和共沉淀方法合成纯氧化镁以及镍、锌双掺杂氧化镁,镍浓度在2%至10%之间变化,锌浓度保持在20%不变。除了光致发光分析外,还使用场发射扫描电子显微镜、能量色散X射线分析、粉末X射线衍射、吸收光谱对结构和光学性质进行了研究。通过谢乐方程和威廉姆森-霍尔方法估算了样品的微晶尺寸、应变值和位错密度。Tauc图分析表明,共掺杂样品降低了氧化镁的带隙。光致发光发射光谱显示出由氧化镁中镍和锌共掺杂诱导的各种缺陷能级产生的宽发射。镍和锌共掺杂样品中还诱导出铁磁性,对于10%镍-20%锌掺杂的氧化镁,饱和磁化强度高达5.4668×10emu。进行了抗菌研究,所有样品对金黄色葡萄球菌菌株(ATCC 25923)均有效。这项全面的研究突出了镍、锌双掺杂对氧化镁纳米颗粒特性的多维度影响,为材料研究中的各种应用提供了有价值的见解。