Cargando…

High-speed, scanned laser structuring of multi-layered eco/bioresorbable materials for advanced electronic systems

Physically transient forms of electronics enable unique classes of technologies, ranging from biomedical implants that disappear through processes of bioresorption after serving a clinical need to internet-of-things devices that harmlessly dissolve into the environment following a relevant period of...

Descripción completa

Detalles Bibliográficos
Autores principales: Yang, Quansan, Hu, Ziying, Seo, Min-Ho, Xu, Yameng, Yan, Ying, Hsu, Yen-Hao, Berkovich, Jaime, Lee, Kwonjae, Liu, Tzu-Li, McDonald, Samantha, Nie, Haolin, Oh, Hannah, Wu, Mingzheng, Kim, Jin-Tae, Miller, Stephen A., Jia, Ying, Butun, Serkan, Bai, Wubin, Guo, Hexia, Choi, Junhwan, Banks, Anthony, Ray, Wilson Z., Kozorovitskiy, Yevgenia, Becker, Matthew L., Pet, Mitchell A., MacEwan, Matthew R., Chang, Jan-Kai, Wang, Heling, Huang, Yonggang, Rogers, John A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9622701/
https://www.ncbi.nlm.nih.gov/pubmed/36316354
http://dx.doi.org/10.1038/s41467-022-34173-0
_version_ 1784821831678558208
author Yang, Quansan
Hu, Ziying
Seo, Min-Ho
Xu, Yameng
Yan, Ying
Hsu, Yen-Hao
Berkovich, Jaime
Lee, Kwonjae
Liu, Tzu-Li
McDonald, Samantha
Nie, Haolin
Oh, Hannah
Wu, Mingzheng
Kim, Jin-Tae
Miller, Stephen A.
Jia, Ying
Butun, Serkan
Bai, Wubin
Guo, Hexia
Choi, Junhwan
Banks, Anthony
Ray, Wilson Z.
Kozorovitskiy, Yevgenia
Becker, Matthew L.
Pet, Mitchell A.
MacEwan, Matthew R.
Chang, Jan-Kai
Wang, Heling
Huang, Yonggang
Rogers, John A.
author_facet Yang, Quansan
Hu, Ziying
Seo, Min-Ho
Xu, Yameng
Yan, Ying
Hsu, Yen-Hao
Berkovich, Jaime
Lee, Kwonjae
Liu, Tzu-Li
McDonald, Samantha
Nie, Haolin
Oh, Hannah
Wu, Mingzheng
Kim, Jin-Tae
Miller, Stephen A.
Jia, Ying
Butun, Serkan
Bai, Wubin
Guo, Hexia
Choi, Junhwan
Banks, Anthony
Ray, Wilson Z.
Kozorovitskiy, Yevgenia
Becker, Matthew L.
Pet, Mitchell A.
MacEwan, Matthew R.
Chang, Jan-Kai
Wang, Heling
Huang, Yonggang
Rogers, John A.
author_sort Yang, Quansan
collection PubMed
description Physically transient forms of electronics enable unique classes of technologies, ranging from biomedical implants that disappear through processes of bioresorption after serving a clinical need to internet-of-things devices that harmlessly dissolve into the environment following a relevant period of use. Here, we develop a sustainable manufacturing pathway, based on ultrafast pulsed laser ablation, that can support high-volume, cost-effective manipulation of a diverse collection of organic and inorganic materials, each designed to degrade by hydrolysis or enzymatic activity, into patterned, multi-layered architectures with high resolution and accurate overlay registration. The technology can operate in patterning, thinning and/or cutting modes with (ultra)thin eco/bioresorbable materials of different types of semiconductors, dielectrics, and conductors on flexible substrates. Component-level demonstrations span passive and active devices, including diodes and field-effect transistors. Patterning these devices into interconnected layouts yields functional systems, as illustrated in examples that range from wireless implants as monitors of neural and cardiac activity, to thermal probes of microvascular flow, and multi-electrode arrays for biopotential sensing. These advances create important processing options for eco/bioresorbable materials and associated electronic systems, with immediate applicability across nearly all types of bioelectronic studies.
format Online
Article
Text
id pubmed-9622701
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-96227012022-11-02 High-speed, scanned laser structuring of multi-layered eco/bioresorbable materials for advanced electronic systems Yang, Quansan Hu, Ziying Seo, Min-Ho Xu, Yameng Yan, Ying Hsu, Yen-Hao Berkovich, Jaime Lee, Kwonjae Liu, Tzu-Li McDonald, Samantha Nie, Haolin Oh, Hannah Wu, Mingzheng Kim, Jin-Tae Miller, Stephen A. Jia, Ying Butun, Serkan Bai, Wubin Guo, Hexia Choi, Junhwan Banks, Anthony Ray, Wilson Z. Kozorovitskiy, Yevgenia Becker, Matthew L. Pet, Mitchell A. MacEwan, Matthew R. Chang, Jan-Kai Wang, Heling Huang, Yonggang Rogers, John A. Nat Commun Article Physically transient forms of electronics enable unique classes of technologies, ranging from biomedical implants that disappear through processes of bioresorption after serving a clinical need to internet-of-things devices that harmlessly dissolve into the environment following a relevant period of use. Here, we develop a sustainable manufacturing pathway, based on ultrafast pulsed laser ablation, that can support high-volume, cost-effective manipulation of a diverse collection of organic and inorganic materials, each designed to degrade by hydrolysis or enzymatic activity, into patterned, multi-layered architectures with high resolution and accurate overlay registration. The technology can operate in patterning, thinning and/or cutting modes with (ultra)thin eco/bioresorbable materials of different types of semiconductors, dielectrics, and conductors on flexible substrates. Component-level demonstrations span passive and active devices, including diodes and field-effect transistors. Patterning these devices into interconnected layouts yields functional systems, as illustrated in examples that range from wireless implants as monitors of neural and cardiac activity, to thermal probes of microvascular flow, and multi-electrode arrays for biopotential sensing. These advances create important processing options for eco/bioresorbable materials and associated electronic systems, with immediate applicability across nearly all types of bioelectronic studies. Nature Publishing Group UK 2022-10-31 /pmc/articles/PMC9622701/ /pubmed/36316354 http://dx.doi.org/10.1038/s41467-022-34173-0 Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Yang, Quansan
Hu, Ziying
Seo, Min-Ho
Xu, Yameng
Yan, Ying
Hsu, Yen-Hao
Berkovich, Jaime
Lee, Kwonjae
Liu, Tzu-Li
McDonald, Samantha
Nie, Haolin
Oh, Hannah
Wu, Mingzheng
Kim, Jin-Tae
Miller, Stephen A.
Jia, Ying
Butun, Serkan
Bai, Wubin
Guo, Hexia
Choi, Junhwan
Banks, Anthony
Ray, Wilson Z.
Kozorovitskiy, Yevgenia
Becker, Matthew L.
Pet, Mitchell A.
MacEwan, Matthew R.
Chang, Jan-Kai
Wang, Heling
Huang, Yonggang
Rogers, John A.
High-speed, scanned laser structuring of multi-layered eco/bioresorbable materials for advanced electronic systems
title High-speed, scanned laser structuring of multi-layered eco/bioresorbable materials for advanced electronic systems
title_full High-speed, scanned laser structuring of multi-layered eco/bioresorbable materials for advanced electronic systems
title_fullStr High-speed, scanned laser structuring of multi-layered eco/bioresorbable materials for advanced electronic systems
title_full_unstemmed High-speed, scanned laser structuring of multi-layered eco/bioresorbable materials for advanced electronic systems
title_short High-speed, scanned laser structuring of multi-layered eco/bioresorbable materials for advanced electronic systems
title_sort high-speed, scanned laser structuring of multi-layered eco/bioresorbable materials for advanced electronic systems
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9622701/
https://www.ncbi.nlm.nih.gov/pubmed/36316354
http://dx.doi.org/10.1038/s41467-022-34173-0
work_keys_str_mv AT yangquansan highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT huziying highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT seominho highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT xuyameng highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT yanying highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT hsuyenhao highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT berkovichjaime highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT leekwonjae highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT liutzuli highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT mcdonaldsamantha highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT niehaolin highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT ohhannah highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT wumingzheng highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT kimjintae highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT millerstephena highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT jiaying highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT butunserkan highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT baiwubin highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT guohexia highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT choijunhwan highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT banksanthony highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT raywilsonz highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT kozorovitskiyyevgenia highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT beckermatthewl highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT petmitchella highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT macewanmatthewr highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT changjankai highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT wangheling highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT huangyonggang highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems
AT rogersjohna highspeedscannedlaserstructuringofmultilayeredecobioresorbablematerialsforadvancedelectronicsystems