magnetic heating
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2022 ◽  
Vol 32 ◽  
pp. 105095
Author(s):  
Xudong Zuo ◽  
Hao Ding ◽  
Jiandong Zhang ◽  
Tao Fang ◽  
Dongmei Zhang

Author(s):  
Natalia da Silva Moura ◽  
Khashayar R. Bajgiran ◽  
Adam T. Melvin ◽  
Kerry M. Dooley ◽  
James A. Dorman

Author(s):  
Xudong Zuo ◽  
Haitang Xu ◽  
Jiandong Zhang ◽  
Yongxing Sui ◽  
Tao Fang ◽  
...  

2021 ◽  
Author(s):  
Elyahb Kwizera ◽  
Samantha Stewart ◽  
Md Musavvir Mahmud ◽  
Xiaoming He

Abstract Magnetic nanoparticles, especially superparamagnetic nanoparticles (SPIONs), have attracted tremendous attention for various biomedical applications. Facile synthesis and functionalization together with easy control of the size and shape of SPIONS to customize their unique properties, have made it possible to develop different types of SPIONs tailored for diverse functions/applications. More recently, considerable attention has been paid to the thermal effect of SPIONs for the treatment of diseases like cancer and for nanowarming of cryopreserved/banked cells, tissues, and organs. In this mini-review, recent advances on the magnetic heating effect of SPIONs for magnetothermal therapy and enhancement of cryopreservation of cells, tissues, and organs, are discussed, together with the non-magnetic heating effect (i.e., high Intensity focused ultrasound or HIFU-activated heating) of SPIONs for cancer therapy. Furthermore, challenges facing the use of magnetic nanoparticles in these biomedical applications are presented.


2021 ◽  
Vol 13 (38) ◽  
pp. 45870-45880
Author(s):  
Liudmyla Storozhuk ◽  
Maximilian O. Besenhard ◽  
Stefanos Mourdikoudis ◽  
Alec P. LaGrow ◽  
Martin R. Lees ◽  
...  

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
S. Fatemeh Shams ◽  
Detlef Schmitz ◽  
Alevtina Smekhova ◽  
Mohammad Reza Ghazanfari ◽  
Margret Giesen ◽  
...  

AbstractDecoration with Pd clusters increases the magnetic heating ability of cobalt ferrite (CFO) nanoparticles by a factor of two. The origin of this previous finding is unraveled by element-specific X-ray absorption spectroscopy (XAS) and magnetic circular dichroism (XMCD) combined with atomic multiplet simulations and density functional theory (DFT) calculations. While the comparison of XAS spectra with atomic multiplet simulations show that the inversion degree is not affected by Pd decoration and, thus, can be excluded as a reason for the improved heating performance, XMCD reveals two interrelated responsible sources: significantly larger Fe and Co magnetic moments verify an increased total magnetization which enhances the magnetic heating ability. This is accompanied by a remarkable change in the field-dependent magnetization particularly for Co ions which exhibit an increased low-field susceptibility and a reduced spin canting behavior in higher magnetic fields. Using DFT calculations, these findings are explained by reduced superexchange between ions on octahedral lattice sites via oxygen in close vicinity of Pd, which reinforces the dominating antiparallel superexchange interaction between ions on octahedral and tetrahedral lattice sites and thus reduces spin canting. The influence of the delocalized nature of Pd 4d electrons on the neighboring ions is discussed and the conclusions are illustrated with spin density isosurfaces of the involved ions. The presented results pave the way to design nanohybrids with tailored electronic structure and magnetic properties.


2021 ◽  
Vol 126 ◽  
pp. 112117
Author(s):  
Maria Nikolaou ◽  
Kyriakos Avraam ◽  
Argiris Kolokithas-Ntoukas ◽  
Aristides Bakandritsos ◽  
Frantisek Lizal ◽  
...  

Author(s):  
L. H. Nguyen ◽  
N. X. Phuc ◽  
D. H. Manh ◽  
N. H. Nam ◽  
N. X. Truong ◽  
...  

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