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A Water-Resistant, Self-Healing Encapsulation Layer for a Stable, Implantable Wireless Antenna

Polymers for implantable devices are desirable for biomedical engineering applications. This study introduces a water-resistant, self-healing fluoroelastomer (SHFE) as an encapsulation material for antennas. The SHFE exhibits a tissue-like modulus (approximately 0.4 MPa), stretchability (at least 45...

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Autores principales: An, Soojung, Lyu, Hyunsang, Seong, Duhwan, Yoon, Hyun, Kim, In Soo, Lee, Hyojin, Shin, Mikyung, Hwang, Keum Cheol, Son, Donghee
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10457836/
https://www.ncbi.nlm.nih.gov/pubmed/37631448
http://dx.doi.org/10.3390/polym15163391
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author An, Soojung
Lyu, Hyunsang
Seong, Duhwan
Yoon, Hyun
Kim, In Soo
Lee, Hyojin
Shin, Mikyung
Hwang, Keum Cheol
Son, Donghee
author_facet An, Soojung
Lyu, Hyunsang
Seong, Duhwan
Yoon, Hyun
Kim, In Soo
Lee, Hyojin
Shin, Mikyung
Hwang, Keum Cheol
Son, Donghee
author_sort An, Soojung
collection PubMed
description Polymers for implantable devices are desirable for biomedical engineering applications. This study introduces a water-resistant, self-healing fluoroelastomer (SHFE) as an encapsulation material for antennas. The SHFE exhibits a tissue-like modulus (approximately 0.4 MPa), stretchability (at least 450%, even after self-healing in an underwater environment), self-healability, and water resistance (WVTR result: 17.8610 g m(−2) day(−1)). Further, the SHFE is self-healing in underwater environments via dipole–dipole interactions, such that devices can be protected from the penetration of biofluids and withstand external damage. With the combination of the SHFE and antennas designed to operate inside the body, we fabricated implantable, wireless antennas that can transmit information from inside the body to a reader coil that is outside. For antennas designed considering the dielectric constant, the uniformity of the encapsulation layer is crucial. A uniform and homogeneous interface is formed by simply overlapping two films. This study demonstrated the possibility of wireless communication in vivo through experiments on rodents for 4 weeks, maintaining the maximum communication distance (15 mm) without chemical or physical deformation in the SHFE layer. This study illustrates the applicability of fluoroelastomers in vivo and is expected to contribute to realizing the stable operation of high-performance implantable devices.
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spelling pubmed-104578362023-08-27 A Water-Resistant, Self-Healing Encapsulation Layer for a Stable, Implantable Wireless Antenna An, Soojung Lyu, Hyunsang Seong, Duhwan Yoon, Hyun Kim, In Soo Lee, Hyojin Shin, Mikyung Hwang, Keum Cheol Son, Donghee Polymers (Basel) Article Polymers for implantable devices are desirable for biomedical engineering applications. This study introduces a water-resistant, self-healing fluoroelastomer (SHFE) as an encapsulation material for antennas. The SHFE exhibits a tissue-like modulus (approximately 0.4 MPa), stretchability (at least 450%, even after self-healing in an underwater environment), self-healability, and water resistance (WVTR result: 17.8610 g m(−2) day(−1)). Further, the SHFE is self-healing in underwater environments via dipole–dipole interactions, such that devices can be protected from the penetration of biofluids and withstand external damage. With the combination of the SHFE and antennas designed to operate inside the body, we fabricated implantable, wireless antennas that can transmit information from inside the body to a reader coil that is outside. For antennas designed considering the dielectric constant, the uniformity of the encapsulation layer is crucial. A uniform and homogeneous interface is formed by simply overlapping two films. This study demonstrated the possibility of wireless communication in vivo through experiments on rodents for 4 weeks, maintaining the maximum communication distance (15 mm) without chemical or physical deformation in the SHFE layer. This study illustrates the applicability of fluoroelastomers in vivo and is expected to contribute to realizing the stable operation of high-performance implantable devices. MDPI 2023-08-13 /pmc/articles/PMC10457836/ /pubmed/37631448 http://dx.doi.org/10.3390/polym15163391 Text en © 2023 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 Article
An, Soojung
Lyu, Hyunsang
Seong, Duhwan
Yoon, Hyun
Kim, In Soo
Lee, Hyojin
Shin, Mikyung
Hwang, Keum Cheol
Son, Donghee
A Water-Resistant, Self-Healing Encapsulation Layer for a Stable, Implantable Wireless Antenna
title A Water-Resistant, Self-Healing Encapsulation Layer for a Stable, Implantable Wireless Antenna
title_full A Water-Resistant, Self-Healing Encapsulation Layer for a Stable, Implantable Wireless Antenna
title_fullStr A Water-Resistant, Self-Healing Encapsulation Layer for a Stable, Implantable Wireless Antenna
title_full_unstemmed A Water-Resistant, Self-Healing Encapsulation Layer for a Stable, Implantable Wireless Antenna
title_short A Water-Resistant, Self-Healing Encapsulation Layer for a Stable, Implantable Wireless Antenna
title_sort water-resistant, self-healing encapsulation layer for a stable, implantable wireless antenna
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10457836/
https://www.ncbi.nlm.nih.gov/pubmed/37631448
http://dx.doi.org/10.3390/polym15163391
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