2023
DOI: 10.1039/d3cc01637d
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Recent advances in zinc ferrite (ZnFe2O4) based nanostructures for magnetic hyperthermia applications

Priyambada Sahoo,
Piyush Choudhary,
Suvra S. Laha
et al.

Abstract: Zinc ferrite based nanostructures for magnetic hyperthermia applications.

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Cited by 14 publications
(2 citation statements)
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“…A higher percentage of Fe 3+ in O h sites will lead to increased magnetization. 80,81 At 5 K and 300 K, CdFe-190-C exhibits a higher magnetization than the other samples due to the higher percentage of Fe 3+ ions in O h sites in this sample (see Table 3). CdFe-130-C and CdFe-160-C have a similar fraction of Fe 3+ ions in O h sites, while the fraction of Fe 3+ ions in T d sites is more in CdFe-130-C compared to that in CdFe-160-C.…”
Section: Resultsmentioning
confidence: 90%
“…A higher percentage of Fe 3+ in O h sites will lead to increased magnetization. 80,81 At 5 K and 300 K, CdFe-190-C exhibits a higher magnetization than the other samples due to the higher percentage of Fe 3+ ions in O h sites in this sample (see Table 3). CdFe-130-C and CdFe-160-C have a similar fraction of Fe 3+ ions in O h sites, while the fraction of Fe 3+ ions in T d sites is more in CdFe-130-C compared to that in CdFe-160-C.…”
Section: Resultsmentioning
confidence: 90%
“…Among spinel ferrites, multicomponent zinc ferrites assume particular significance. Pure zinc ferrite is classified as a normal spinel, characterized by the presence of 8 divalent Zn 2+ cations at tetrahedral positions and 16 trivalent Fe 3+ cations at octahedral positions [5]. Conversely, magnesium ferrite belongs to the inverted spinel category, with 8 divalent Mg 2+ cations occupying 8 of the 16 available octahedral positions, and 16 trivalent Fe 3+ cations distributed between 8 tetrahedral and 8 octahedral positions [6].…”
Section: Introductionmentioning
confidence: 99%