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Magnetoimpedance Biosensors and Real-Time Healthcare Monitors: Progress, Opportunities, and Challenges

A small DC magnetic field can induce an enormous response in the impedance of a soft magnetic conductor in various forms of wire, ribbon, and thin film. Also known as the giant magnetoimpedance (GMI) effect, this phenomenon forms the basis for the development of high-performance magnetic biosensors...

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Autores principales: Jimenez, Valery Ortiz, Hwang, Kee Young, Nguyen, Dang, Rahman, Yasif, Albrecht, Claire, Senator, Baylee, Thiabgoh, Ongard, Devkota, Jagannath, Bui, Vinh Duc An, Lam, Dao Son, Eggers, Tatiana, Phan, Manh-Huong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9313129/
https://www.ncbi.nlm.nih.gov/pubmed/35884320
http://dx.doi.org/10.3390/bios12070517
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author Jimenez, Valery Ortiz
Hwang, Kee Young
Nguyen, Dang
Rahman, Yasif
Albrecht, Claire
Senator, Baylee
Thiabgoh, Ongard
Devkota, Jagannath
Bui, Vinh Duc An
Lam, Dao Son
Eggers, Tatiana
Phan, Manh-Huong
author_facet Jimenez, Valery Ortiz
Hwang, Kee Young
Nguyen, Dang
Rahman, Yasif
Albrecht, Claire
Senator, Baylee
Thiabgoh, Ongard
Devkota, Jagannath
Bui, Vinh Duc An
Lam, Dao Son
Eggers, Tatiana
Phan, Manh-Huong
author_sort Jimenez, Valery Ortiz
collection PubMed
description A small DC magnetic field can induce an enormous response in the impedance of a soft magnetic conductor in various forms of wire, ribbon, and thin film. Also known as the giant magnetoimpedance (GMI) effect, this phenomenon forms the basis for the development of high-performance magnetic biosensors with magnetic field sensitivity down to the picoTesla regime at room temperature. Over the past decade, some state-of-the-art prototypes have become available for trial tests due to continuous efforts to improve the sensitivity of GMI biosensors for the ultrasensitive detection of biological entities and biomagnetic field detection of human activities through the use of magnetic nanoparticles as biomarkers. In this review, we highlight recent advances in the development of GMI biosensors and review medical devices for applications in biomedical diagnostics and healthcare monitoring, including real-time monitoring of respiratory motion in COVID-19 patients at various stages. We also discuss exciting research opportunities and existing challenges that will stimulate further study into ultrasensitive magnetic biosensors and healthcare monitors based on the GMI effect.
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spelling pubmed-93131292022-07-26 Magnetoimpedance Biosensors and Real-Time Healthcare Monitors: Progress, Opportunities, and Challenges Jimenez, Valery Ortiz Hwang, Kee Young Nguyen, Dang Rahman, Yasif Albrecht, Claire Senator, Baylee Thiabgoh, Ongard Devkota, Jagannath Bui, Vinh Duc An Lam, Dao Son Eggers, Tatiana Phan, Manh-Huong Biosensors (Basel) Review A small DC magnetic field can induce an enormous response in the impedance of a soft magnetic conductor in various forms of wire, ribbon, and thin film. Also known as the giant magnetoimpedance (GMI) effect, this phenomenon forms the basis for the development of high-performance magnetic biosensors with magnetic field sensitivity down to the picoTesla regime at room temperature. Over the past decade, some state-of-the-art prototypes have become available for trial tests due to continuous efforts to improve the sensitivity of GMI biosensors for the ultrasensitive detection of biological entities and biomagnetic field detection of human activities through the use of magnetic nanoparticles as biomarkers. In this review, we highlight recent advances in the development of GMI biosensors and review medical devices for applications in biomedical diagnostics and healthcare monitoring, including real-time monitoring of respiratory motion in COVID-19 patients at various stages. We also discuss exciting research opportunities and existing challenges that will stimulate further study into ultrasensitive magnetic biosensors and healthcare monitors based on the GMI effect. MDPI 2022-07-12 /pmc/articles/PMC9313129/ /pubmed/35884320 http://dx.doi.org/10.3390/bios12070517 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Jimenez, Valery Ortiz
Hwang, Kee Young
Nguyen, Dang
Rahman, Yasif
Albrecht, Claire
Senator, Baylee
Thiabgoh, Ongard
Devkota, Jagannath
Bui, Vinh Duc An
Lam, Dao Son
Eggers, Tatiana
Phan, Manh-Huong
Magnetoimpedance Biosensors and Real-Time Healthcare Monitors: Progress, Opportunities, and Challenges
title Magnetoimpedance Biosensors and Real-Time Healthcare Monitors: Progress, Opportunities, and Challenges
title_full Magnetoimpedance Biosensors and Real-Time Healthcare Monitors: Progress, Opportunities, and Challenges
title_fullStr Magnetoimpedance Biosensors and Real-Time Healthcare Monitors: Progress, Opportunities, and Challenges
title_full_unstemmed Magnetoimpedance Biosensors and Real-Time Healthcare Monitors: Progress, Opportunities, and Challenges
title_short Magnetoimpedance Biosensors and Real-Time Healthcare Monitors: Progress, Opportunities, and Challenges
title_sort magnetoimpedance biosensors and real-time healthcare monitors: progress, opportunities, and challenges
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9313129/
https://www.ncbi.nlm.nih.gov/pubmed/35884320
http://dx.doi.org/10.3390/bios12070517
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