Sahu Bimaleswar, Ramesh K V, Pandrangi Santhi Latha, Venkatesh Davuluri, Singh Bheeshma Pratap, Chittineedi Prasanthi, Meena Sher Singh
Department of Physics, GITAM School of Science, GITAM Deemed to be University, Rushikonda, Visakhapatnam, AP-530045, India.
Onco-Stem Cell Research Laboratory, Department of Life Sciences, GITAM School of Science, GITAM Deemed to be University, Rushikonda, Visakhapatnam, AP-530045, India.
ACS Omega. 2025 Jul 25;10(30):33192-33207. doi: 10.1021/acsomega.5c03053. eCollection 2025 Aug 5.
Zinc-added cobalt ferrite with a composition of ZnCoFeO was synthesized using the sol-gel method with poly-(vinyl alcohol) as a chelating agent. The structural properties of the as-synthesized ferrite were determined using X-ray diffraction and Fourier transform infrared spectroscopy (FTIR). The measured structural parameters revealed the formation of a single-phase cubic spinel structure in the sample. Various structural parameters were measured to identify the variations upon the addition of Zn. The surface of the sample was coated with SiO and NH to achieve better catalytic performance. The surface coating of the sample was confirmed using FTIR and energy-dispersive X-ray analysis (EDAX). The optical energy gap of the sample was calculated using a Tauc plot derived from the UV-vis spectra, and the Urbach energy of the sample was calculated. The bandgap energy and Urbach energy were determined to be 2.14 and 0.04 eV, respectively. This confirmed the semiconducting nature of the sample. Thermogravimetric analysis was performed using differential scanning calorimetry. Surface morphology and elemental analyses were performed using field-emission scanning electron microscopy (FESEM) with EDAX. The almost uniform size of the particles confirmed the effectiveness of the synthesis method. The direct-current electrical conductivity was measured using the two-probe method, and the dielectric properties were measured using an impedance analyzer in the frequency range of 100 Hz-10 MHz. The variations in the dielectric properties are also discussed in this study. The proposed cation distribution was confirmed using Mössbauer spectroscopy. Magnetic measurements were performed using a vibrating sample magnetometer, and the obtained magnetization (37.16 emu/g) and coercivity (0.209 Oe) confirmed the soft ferromagnetic nature of the Zn-added Co ferrite. The antibacterial and antifungal activities of ZnCoFeO against and were evaluated. These findings suggest that ZnCoFeO nanoparticles have potential applications in biomedicine, such as in magnetic hyperthermia treatment and drug delivery systems.
采用溶胶 - 凝胶法,以聚乙烯醇作为螯合剂,合成了组成为ZnCoFeO的添加锌钴铁氧体。使用X射线衍射和傅里叶变换红外光谱(FTIR)确定了合成铁氧体的结构性质。测量得到的结构参数表明样品中形成了单相立方尖晶石结构。测量了各种结构参数以确定添加锌后的变化。样品表面涂覆了SiO和NH以获得更好的催化性能。使用FTIR和能量色散X射线分析(EDAX)确认了样品的表面涂层。使用由紫外 - 可见光谱得出的Tauc图计算样品的光学能隙,并计算样品的乌尔巴赫能量。确定带隙能量和乌尔巴赫能量分别为2.14和0.04 eV。这证实了样品的半导体性质。使用差示扫描量热法进行热重分析。使用带有EDAX的场发射扫描电子显微镜(FESEM)进行表面形貌和元素分析。颗粒几乎均匀的尺寸证实了合成方法的有效性。使用两探针法测量直流电导率,并使用阻抗分析仪在100 Hz - 10 MHz频率范围内测量介电性能。本研究还讨论了介电性能的变化。使用穆斯堡尔光谱证实了所提出的阳离子分布。使用振动样品磁强计进行磁性测量,获得的磁化强度(37.16 emu/g)和矫顽力(0.209 Oe)证实了添加锌的钴铁氧体的软铁磁性质。评估了ZnCoFeO对和的抗菌和抗真菌活性。这些发现表明ZnCoFeO纳米颗粒在生物医学中具有潜在应用,例如在磁热疗和药物递送系统中。