Hybrid magnetic nanoparticles as efficient nanoheaters in biomedical applications
Abstract
Heating at the nanoscale is the basis of several biomedical applications, including magnetic hyperthermia therapies and heat-triggered drug delivery. The combination of multiple inorganic materials in hybrid magnetic nanoparticles provides versatile platforms to achieve an efficient heat delivery upon different external stimuli or to get an optical feedback during the process. However, the successful design and application of these nanomaterials usually require intricate synthesis routes and their magnetic response is still not fully understood. In this review we give an overview of the novel systems reported in the last few years, which have been mostly obtained by organic phase-based synthesis and epitaxial growth processes. Since the heating efficiency of hybrid magnetic nanoparticles often relies on the exchange-interaction between their components, we discuss various interface-phenomena that are responsible for their magnetic properties. Finally, followed by a brief comment on future directions in the field, we outline recent advances on multifunctional nanoparticles that can boost the heating power with light and combine heating and temperature sensing in a single nanomaterial.
- Authors:
-
- Instituto de Investigaciones Fisicoquímicas Teóricas y Aplicadas (INIFTA-CONICET), Universidad Nacional de La Plata, 1900 La Plata, Argentina
- Faculty of Materials Science and Engineering and Phenikaa Institute for Advanced Study (PIAS), Phenikaa University, Hanoi, Vietnam, Phenikaa Research and Technology Institute (PRATI)
- Departamento CITIMAC, Universidad de Cantabria, Santander 39005, Spain
- Department of Physics, University of South Florida, 33620 Tampa, USA
- Publication Date:
- Research Org.:
- Univ. of South Florida, Tampa, FL (United States)
- Sponsoring Org.:
- USDOE; USDOE Office of Science (SC), Basic Energy Sciences (BES). Materials Sciences & Engineering Division; ANPCyT Argentina; Ministry of Science and Innovation Spain; Vietnam National Foundation for Science and Technology Development (NAFOSTED)
- OSTI Identifier:
- 1760041
- Alternate Identifier(s):
- OSTI ID: 1849802
- Grant/Contract Number:
- FG02-07ER46438; PICT 2018-3442; MAT2017-83631-C3-R; 103.02-2019.314
- Resource Type:
- Published Article
- Journal Name:
- Nanoscale Advances
- Additional Journal Information:
- Journal Name: Nanoscale Advances Journal Volume: 3 Journal Issue: 4; Journal ID: ISSN 2516-0230
- Publisher:
- Royal Society of Chemistry (RSC)
- Country of Publication:
- United Kingdom
- Language:
- English
- Subject:
- 36 MATERIALS SCIENCE
Citation Formats
Lavorato, Gabriel C., Das, Raja, Alonso Masa, Javier, Phan, Manh-Huong, and Srikanth, Hariharan. Hybrid magnetic nanoparticles as efficient nanoheaters in biomedical applications. United Kingdom: N. p., 2021.
Web. doi:10.1039/D0NA00828A.
Lavorato, Gabriel C., Das, Raja, Alonso Masa, Javier, Phan, Manh-Huong, & Srikanth, Hariharan. Hybrid magnetic nanoparticles as efficient nanoheaters in biomedical applications. United Kingdom. https://doi.org/10.1039/D0NA00828A
Lavorato, Gabriel C., Das, Raja, Alonso Masa, Javier, Phan, Manh-Huong, and Srikanth, Hariharan. Tue .
"Hybrid magnetic nanoparticles as efficient nanoheaters in biomedical applications". United Kingdom. https://doi.org/10.1039/D0NA00828A.
@article{osti_1760041,
title = {Hybrid magnetic nanoparticles as efficient nanoheaters in biomedical applications},
author = {Lavorato, Gabriel C. and Das, Raja and Alonso Masa, Javier and Phan, Manh-Huong and Srikanth, Hariharan},
abstractNote = {Heating at the nanoscale is the basis of several biomedical applications, including magnetic hyperthermia therapies and heat-triggered drug delivery. The combination of multiple inorganic materials in hybrid magnetic nanoparticles provides versatile platforms to achieve an efficient heat delivery upon different external stimuli or to get an optical feedback during the process. However, the successful design and application of these nanomaterials usually require intricate synthesis routes and their magnetic response is still not fully understood. In this review we give an overview of the novel systems reported in the last few years, which have been mostly obtained by organic phase-based synthesis and epitaxial growth processes. Since the heating efficiency of hybrid magnetic nanoparticles often relies on the exchange-interaction between their components, we discuss various interface-phenomena that are responsible for their magnetic properties. Finally, followed by a brief comment on future directions in the field, we outline recent advances on multifunctional nanoparticles that can boost the heating power with light and combine heating and temperature sensing in a single nanomaterial.},
doi = {10.1039/D0NA00828A},
journal = {Nanoscale Advances},
number = 4,
volume = 3,
place = {United Kingdom},
year = {Tue Feb 23 00:00:00 EST 2021},
month = {Tue Feb 23 00:00:00 EST 2021}
}
https://doi.org/10.1039/D0NA00828A
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