Cargando…

Rapid prototyping of heterostructured organic microelectronics using wax printing, filtration, and transfer

Conducting polymers are the natural choice for soft electronics. However, the main challenge is to pattern conducting polymers using a simple and rapid method to manufacture advanced devices. Filtration of conducting particle dispersions using a patterned membrane is a promising method. Here, we sho...

Descripción completa

Detalles Bibliográficos
Autores principales: Ouyang, Liangqi, Buchmann, Sebastian, Benselfelt, Tobias, Musumeci, Chiara, Wang, Zhen, Khaliliazar, Shirin, Tian, Weiqian, Li, Hailong, Herland, Anna, Hamedi, Mahiar M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8552910/
https://www.ncbi.nlm.nih.gov/pubmed/34765224
http://dx.doi.org/10.1039/d1tc03599a
_version_ 1784591477061451776
author Ouyang, Liangqi
Buchmann, Sebastian
Benselfelt, Tobias
Musumeci, Chiara
Wang, Zhen
Khaliliazar, Shirin
Tian, Weiqian
Li, Hailong
Herland, Anna
Hamedi, Mahiar M.
author_facet Ouyang, Liangqi
Buchmann, Sebastian
Benselfelt, Tobias
Musumeci, Chiara
Wang, Zhen
Khaliliazar, Shirin
Tian, Weiqian
Li, Hailong
Herland, Anna
Hamedi, Mahiar M.
author_sort Ouyang, Liangqi
collection PubMed
description Conducting polymers are the natural choice for soft electronics. However, the main challenge is to pattern conducting polymers using a simple and rapid method to manufacture advanced devices. Filtration of conducting particle dispersions using a patterned membrane is a promising method. Here, we show the rapid prototyping of various micropatterned organic electronic heterostructures of PEDOT:PSS by inducing the formation of microscopic hydrogels, which are then filtered through membranes containing printed hydrophobic wax micropatterns. The hydrogels are retained on the un-patterned, hydrophilic regions, forming micropatterns, achieving a resolution reaching 100 μm. We further solve the problem of forming stacked devices by transferring the acidified PEDOT:PSS micropattern using the adhesive tape transfer method to form vertical heterostructures with other micropatterned electronic colloids such as CNTs, which are patterned using a similar technique. We demonstrate a number of different heterostructure devices including micro supercapacitors and organic electrochemical transistors and also demonstrate the use of acidified PEDOT:PSS microstructures in cell cultures to enable bioelectronics.
format Online
Article
Text
id pubmed-8552910
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-85529102021-11-09 Rapid prototyping of heterostructured organic microelectronics using wax printing, filtration, and transfer Ouyang, Liangqi Buchmann, Sebastian Benselfelt, Tobias Musumeci, Chiara Wang, Zhen Khaliliazar, Shirin Tian, Weiqian Li, Hailong Herland, Anna Hamedi, Mahiar M. J Mater Chem C Mater Chemistry Conducting polymers are the natural choice for soft electronics. However, the main challenge is to pattern conducting polymers using a simple and rapid method to manufacture advanced devices. Filtration of conducting particle dispersions using a patterned membrane is a promising method. Here, we show the rapid prototyping of various micropatterned organic electronic heterostructures of PEDOT:PSS by inducing the formation of microscopic hydrogels, which are then filtered through membranes containing printed hydrophobic wax micropatterns. The hydrogels are retained on the un-patterned, hydrophilic regions, forming micropatterns, achieving a resolution reaching 100 μm. We further solve the problem of forming stacked devices by transferring the acidified PEDOT:PSS micropattern using the adhesive tape transfer method to form vertical heterostructures with other micropatterned electronic colloids such as CNTs, which are patterned using a similar technique. We demonstrate a number of different heterostructure devices including micro supercapacitors and organic electrochemical transistors and also demonstrate the use of acidified PEDOT:PSS microstructures in cell cultures to enable bioelectronics. The Royal Society of Chemistry 2021-09-02 /pmc/articles/PMC8552910/ /pubmed/34765224 http://dx.doi.org/10.1039/d1tc03599a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ouyang, Liangqi
Buchmann, Sebastian
Benselfelt, Tobias
Musumeci, Chiara
Wang, Zhen
Khaliliazar, Shirin
Tian, Weiqian
Li, Hailong
Herland, Anna
Hamedi, Mahiar M.
Rapid prototyping of heterostructured organic microelectronics using wax printing, filtration, and transfer
title Rapid prototyping of heterostructured organic microelectronics using wax printing, filtration, and transfer
title_full Rapid prototyping of heterostructured organic microelectronics using wax printing, filtration, and transfer
title_fullStr Rapid prototyping of heterostructured organic microelectronics using wax printing, filtration, and transfer
title_full_unstemmed Rapid prototyping of heterostructured organic microelectronics using wax printing, filtration, and transfer
title_short Rapid prototyping of heterostructured organic microelectronics using wax printing, filtration, and transfer
title_sort rapid prototyping of heterostructured organic microelectronics using wax printing, filtration, and transfer
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8552910/
https://www.ncbi.nlm.nih.gov/pubmed/34765224
http://dx.doi.org/10.1039/d1tc03599a
work_keys_str_mv AT ouyangliangqi rapidprototypingofheterostructuredorganicmicroelectronicsusingwaxprintingfiltrationandtransfer
AT buchmannsebastian rapidprototypingofheterostructuredorganicmicroelectronicsusingwaxprintingfiltrationandtransfer
AT benselfelttobias rapidprototypingofheterostructuredorganicmicroelectronicsusingwaxprintingfiltrationandtransfer
AT musumecichiara rapidprototypingofheterostructuredorganicmicroelectronicsusingwaxprintingfiltrationandtransfer
AT wangzhen rapidprototypingofheterostructuredorganicmicroelectronicsusingwaxprintingfiltrationandtransfer
AT khaliliazarshirin rapidprototypingofheterostructuredorganicmicroelectronicsusingwaxprintingfiltrationandtransfer
AT tianweiqian rapidprototypingofheterostructuredorganicmicroelectronicsusingwaxprintingfiltrationandtransfer
AT lihailong rapidprototypingofheterostructuredorganicmicroelectronicsusingwaxprintingfiltrationandtransfer
AT herlandanna rapidprototypingofheterostructuredorganicmicroelectronicsusingwaxprintingfiltrationandtransfer
AT hamedimahiarm rapidprototypingofheterostructuredorganicmicroelectronicsusingwaxprintingfiltrationandtransfer