Effect of Ni substitution and annealing temperature on structural and magnetic properties of MnZn-Ferrites: Cytotoxicity study of ZnO and SiO2 coated core shell structures
- Authors
- Mallesh, Shanigaram; Mondal, Pradip; Kavita, Srikanti; Srinivas, Veeturi; Nam, Young-Woo
- Issue Date
- Dec-2022
- Publisher
- Elsevier BV
- Keywords
- Magnetic spinel nanoparticle; Core shell structure; Phase stability; X-ray photoelectron spectroscopy; Magnetization; Cytotoxicity
- Citation
- Applied Surface Science, v.605
- Indexed
- SCIE
SCOPUS
- Journal Title
- Applied Surface Science
- Volume
- 605
- URI
- https://scholarworks.gnu.ac.kr/handle/sw.gnu/29374
- DOI
- 10.1016/j.apsusc.2022.154648
- ISSN
- 0169-4332
1873-5584
- Abstract
- Magnetic spinel ferrite nanoparticles (NPs) have a broad scope of applications based on their structural properties, including in lithium-ion batteries, catalysts, electrochemical energy storage, drug delivery, magnetic hyperthermia, and photothermia. In this study, we investigated the structure, crystallographic phase formations, and magnetic properties of Ni-substituted MnZn ferrites (MZFs), Mn(0.6-x)Zn(0.4-y)Ni(x+y)Fe2O4 (x = 0-0.6, y = 0; y = 0-0.4, x = 0) compositions of as-prepared (AP) and air annealed (350-1200 degrees C) samples. All AP NPs exhibited a pure spinel structure. Ni-MZF compositions annealed at 600 degrees C had high alpha-Fe2O3 secondary phase content in Ni-MZFs (Ni substituted for Zn), whereas Ni-MZFs with x = 0.4 (Ni substituted for Mn) had no impurities, and its magnetization (50 emu/g) was enhanced compared with that of the other samples. X-ray photoelectron spectroscopy revealed that Fe3+ cations were present in tetrahedral and octahedral sites. The single spinel phase reappeared with improved crystallinity in all Ni-MZFs by annealing at 1200 degrees C and exhibited superior magnetization (60-73 emu/g) compared with that of MZF (35 emu/g). Additionally, the spinel phase was stabilized in the ZnO- and SiO2-coated Ni-MZF core shell structures annealed at 700 degrees C with higher magnetization than MZF. Moreover, Ni-MZF core shell structures exhibited biocompatibility and may have biomedical applications.
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Collections - 공학계열 > 기계항공우주공학부 > Journal Articles
- 공학계열 > Division of Mechanical and Aerospace Engineering > Journal Articles

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