Core–Shell Magnetoelectric Nanoparticles: Materials, Synthesis, Magnetoelectricity, and Applications

Nanoparticles with small diameters and large surface areas have potential advantages and are actively utilized in various fields related to biomedical and catalytic applications. Multifunctional applications can be achieved by endowing nanoparticles with piezoelectric, quantum dot, magnetothermal, a...

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Published in:Actuators
Main Authors: Hyunseok Song, Michael Abraham Listyawan, Jungho Ryu
Format: Article
Language:English
Published: MDPI AG 2022-12-01
Subjects:
Online Access:https://www.mdpi.com/2076-0825/11/12/380
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author Hyunseok Song
Michael Abraham Listyawan
Jungho Ryu
author_facet Hyunseok Song
Michael Abraham Listyawan
Jungho Ryu
author_sort Hyunseok Song
collection DOAJ
container_title Actuators
description Nanoparticles with small diameters and large surface areas have potential advantages and are actively utilized in various fields related to biomedical and catalytic applications. Multifunctional applications can be achieved by endowing nanoparticles with piezoelectric, quantum dot, magnetothermal, and piezoluminescent properties. In particular, multiferroic magnetoelectric nanoparticles (MENPs) can generate electricity by coupling piezoelectric and magnetostrictive properties when an external magnetic field, which is harmless to the human body, is applied. In this regard, magnetoelectricity (ME) induced by a magnetic field makes MENPs useful for various biomedical and electrocatalytic applications. The ME voltage coefficients, which express the efficiency of energy conversion from magnetic field to electricity, show differences depending on the setup for ME measurements of MENPs. Therefore, numerous attempts have been made to optimize the ME characterization method to reduce measurement errors resulting from charge leakages caused by the specimen preparation, as well as to investigate the ME effect of a single nanoparticle. Our review is focused on the structures, syntheses (hydrothermal and sol–gel methods), activation mechanism, and measurement of magnetoelectricity, as well as applications, of core–shell MENPs.
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spelling doaj-art-2e9727a3a0ee46bf8aec35ff5207c1cb2025-08-19T23:21:49ZengMDPI AGActuators2076-08252022-12-01111238010.3390/act11120380Core–Shell Magnetoelectric Nanoparticles: Materials, Synthesis, Magnetoelectricity, and ApplicationsHyunseok Song0Michael Abraham Listyawan1Jungho Ryu2School of Materials Science and Engineering, Yeungnam University, Daehak-ro, Gyeongsan-si 38541, Gyeongsangbuk-do, Republic of KoreaSchool of Materials Science and Engineering, Yeungnam University, Daehak-ro, Gyeongsan-si 38541, Gyeongsangbuk-do, Republic of KoreaSchool of Materials Science and Engineering, Yeungnam University, Daehak-ro, Gyeongsan-si 38541, Gyeongsangbuk-do, Republic of KoreaNanoparticles with small diameters and large surface areas have potential advantages and are actively utilized in various fields related to biomedical and catalytic applications. Multifunctional applications can be achieved by endowing nanoparticles with piezoelectric, quantum dot, magnetothermal, and piezoluminescent properties. In particular, multiferroic magnetoelectric nanoparticles (MENPs) can generate electricity by coupling piezoelectric and magnetostrictive properties when an external magnetic field, which is harmless to the human body, is applied. In this regard, magnetoelectricity (ME) induced by a magnetic field makes MENPs useful for various biomedical and electrocatalytic applications. The ME voltage coefficients, which express the efficiency of energy conversion from magnetic field to electricity, show differences depending on the setup for ME measurements of MENPs. Therefore, numerous attempts have been made to optimize the ME characterization method to reduce measurement errors resulting from charge leakages caused by the specimen preparation, as well as to investigate the ME effect of a single nanoparticle. Our review is focused on the structures, syntheses (hydrothermal and sol–gel methods), activation mechanism, and measurement of magnetoelectricity, as well as applications, of core–shell MENPs.https://www.mdpi.com/2076-0825/11/12/380magnetoelectric effectcore–shell magnetoelectric nanoparticlesdrug deliverybrain imagingbrain stimulationcell regeneration
spellingShingle Hyunseok Song
Michael Abraham Listyawan
Jungho Ryu
Core–Shell Magnetoelectric Nanoparticles: Materials, Synthesis, Magnetoelectricity, and Applications
magnetoelectric effect
core–shell magnetoelectric nanoparticles
drug delivery
brain imaging
brain stimulation
cell regeneration
title Core–Shell Magnetoelectric Nanoparticles: Materials, Synthesis, Magnetoelectricity, and Applications
title_full Core–Shell Magnetoelectric Nanoparticles: Materials, Synthesis, Magnetoelectricity, and Applications
title_fullStr Core–Shell Magnetoelectric Nanoparticles: Materials, Synthesis, Magnetoelectricity, and Applications
title_full_unstemmed Core–Shell Magnetoelectric Nanoparticles: Materials, Synthesis, Magnetoelectricity, and Applications
title_short Core–Shell Magnetoelectric Nanoparticles: Materials, Synthesis, Magnetoelectricity, and Applications
title_sort core shell magnetoelectric nanoparticles materials synthesis magnetoelectricity and applications
topic magnetoelectric effect
core–shell magnetoelectric nanoparticles
drug delivery
brain imaging
brain stimulation
cell regeneration
url https://www.mdpi.com/2076-0825/11/12/380
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AT michaelabrahamlistyawan coreshellmagnetoelectricnanoparticlesmaterialssynthesismagnetoelectricityandapplications
AT junghoryu coreshellmagnetoelectricnanoparticlesmaterialssynthesismagnetoelectricityandapplications