Ultra-thin transistors and circuits for conformable electronics

Fuente: arXiv
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Autores principales: Parenti, Federico, Sargeni, Riccardo, Dimaggio, Elisabetta, Pieri, Francesco, Fabbri, Filippo, Losi, Tommaso, Viola, Fabrizio Antonio, Bala, Arindam, Wang, Zhenyu, Kis, Andras, Caironi, Mario, Fiori, Gianluca
Formato: Preprint
Publicado: 2024
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author Parenti, Federico
Sargeni, Riccardo
Dimaggio, Elisabetta
Pieri, Francesco
Fabbri, Filippo
Losi, Tommaso
Viola, Fabrizio Antonio
Bala, Arindam
Wang, Zhenyu
Kis, Andras
Caironi, Mario
Fiori, Gianluca
author_facet Parenti, Federico
Sargeni, Riccardo
Dimaggio, Elisabetta
Pieri, Francesco
Fabbri, Filippo
Losi, Tommaso
Viola, Fabrizio Antonio
Bala, Arindam
Wang, Zhenyu
Kis, Andras
Caironi, Mario
Fiori, Gianluca
contents Adapting electronics to perfectly conform to non-planar and rough surfaces, such as human skin, is a very challenging task which, if solved, could open up new applications in fields of high economic and scientific interest ranging from health to robotics, wearable electronics, human machine interface and Internet of Things. The key to success lies in defining a technology that can lead to the fabrication of ultra-thin devices while exploiting materials that are ultimately thin, with high mechanical flexibility and excellent electrical properties. Here, we report a hybrid approach for the definition of high-performance, ultra-thin and conformable electronic devices and circuits, based on the integration of ultimately thin semiconducting transition metal dichalcogenides (TMDC), i.e., MoS2, with organic gate dielectric material, i.e., polyvinyl formal (PVF) combined with the ink-jet printing of conductive PEDOT:PSS ink for electrodes definition. Through this cost-effective, fully bottom-up and solution-based approach, transistors and simple digital and analogue circuits are fabricated by a sequential stacking of ultrathin (nanometer) layers on a few micron thick polyimide substrate, which guarantees the high flexibility mandatory for the targeted applications.
format Preprint
id arxiv_https___arxiv_org_abs_2406_02442
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Ultra-thin transistors and circuits for conformable electronics
Parenti, Federico
Sargeni, Riccardo
Dimaggio, Elisabetta
Pieri, Francesco
Fabbri, Filippo
Losi, Tommaso
Viola, Fabrizio Antonio
Bala, Arindam
Wang, Zhenyu
Kis, Andras
Caironi, Mario
Fiori, Gianluca
Applied Physics
Materials Science
Adapting electronics to perfectly conform to non-planar and rough surfaces, such as human skin, is a very challenging task which, if solved, could open up new applications in fields of high economic and scientific interest ranging from health to robotics, wearable electronics, human machine interface and Internet of Things. The key to success lies in defining a technology that can lead to the fabrication of ultra-thin devices while exploiting materials that are ultimately thin, with high mechanical flexibility and excellent electrical properties. Here, we report a hybrid approach for the definition of high-performance, ultra-thin and conformable electronic devices and circuits, based on the integration of ultimately thin semiconducting transition metal dichalcogenides (TMDC), i.e., MoS2, with organic gate dielectric material, i.e., polyvinyl formal (PVF) combined with the ink-jet printing of conductive PEDOT:PSS ink for electrodes definition. Through this cost-effective, fully bottom-up and solution-based approach, transistors and simple digital and analogue circuits are fabricated by a sequential stacking of ultrathin (nanometer) layers on a few micron thick polyimide substrate, which guarantees the high flexibility mandatory for the targeted applications.
title Ultra-thin transistors and circuits for conformable electronics
topic Applied Physics
Materials Science
url https://arxiv.org/abs/2406.02442