Printed electronics is an expanding research field that can reach the goal of reducing the environmental impact on electronics exploiting renewable and biodegradable materials, like paper. In our work, we designed and tested a new method for fabricating hybrid smart devices on cellulose substrates by aerosol jet printing (AJP) and photonic curing, also known as flash lamp annealing (FLA), capable to cure low temperature materials without any damage. Three different cellulosebased materials (chromatographic paper, photopaper, cardboard) were tested. Multilayer capability and SMDs (surface mount devices) interconnections are possible permitting high flexibility in the fabrication process. Electrical and geometrical tests were performed to analyze the behavior of printed samples. Resulted resistivities are 26.3 × 10−8 Ω.m on chromatographic paper, 22.3 × 10−8 Ω.m on photopaper and 13.1 × 10−8 Ω.m on cardboard. Profilometer and optical microscope evaluations were performed to state deposition quality and penetration of the ink in cellulose materials (thicknesses equal to 24.9, 28.5, and 51 μm respectively for chromatographic paper, photopaper, and cardboard). Furthermore, bending (only chromatographic paper did not reach the break-up) and damp environment tests (no significant variations in resistance) where performed. A final prototype of a complete functioning multilayer smart devices on cellulose 3D-substrate is shown, characterized by multilayers, capacitive sensors, SMDs interconnections.

Printed smart devices on cellulose-based materials by means of aerosol-jet printing and photonic curing

Serpelloni M.;Cantu E.;Borghetti M.;Sardini E.
2020-01-01

Abstract

Printed electronics is an expanding research field that can reach the goal of reducing the environmental impact on electronics exploiting renewable and biodegradable materials, like paper. In our work, we designed and tested a new method for fabricating hybrid smart devices on cellulose substrates by aerosol jet printing (AJP) and photonic curing, also known as flash lamp annealing (FLA), capable to cure low temperature materials without any damage. Three different cellulosebased materials (chromatographic paper, photopaper, cardboard) were tested. Multilayer capability and SMDs (surface mount devices) interconnections are possible permitting high flexibility in the fabrication process. Electrical and geometrical tests were performed to analyze the behavior of printed samples. Resulted resistivities are 26.3 × 10−8 Ω.m on chromatographic paper, 22.3 × 10−8 Ω.m on photopaper and 13.1 × 10−8 Ω.m on cardboard. Profilometer and optical microscope evaluations were performed to state deposition quality and penetration of the ink in cellulose materials (thicknesses equal to 24.9, 28.5, and 51 μm respectively for chromatographic paper, photopaper, and cardboard). Furthermore, bending (only chromatographic paper did not reach the break-up) and damp environment tests (no significant variations in resistance) where performed. A final prototype of a complete functioning multilayer smart devices on cellulose 3D-substrate is shown, characterized by multilayers, capacitive sensors, SMDs interconnections.
2020
2020
Altre fonti
PE7_4 Systems engineering, sensorics, actorics, automation
PE7_2 Electrical and electronic engineering: semiconductors, components, systems
Esperti anonimi
Inglese
Internazionale
20
3
841
Aerosol jet printing; Paper-based circuit; Paper-based hybrid circuit; Photonic curing; Printed electronics
https://www.mdpi.com/1424-8220/20/3/841/pdf
no
4
info:eu-repo/semantics/article
262
Serpelloni, M.; Cantu, E.; Borghetti, M.; Sardini, E.
1 Contributo su Rivista::1.1 Articolo in rivista
open
File in questo prodotto:
File Dimensione Formato  
Printed Smart Devices on Cellulose-Based Materials by means of Aerosol-Jet Printing and Photonic Curing.pdf

accesso aperto

Descrizione: Printed Smart Devices on Cellulose-Based Materials by means of Aerosol-Jet Printing and Photonic Curing
Tipologia: Full Text
Licenza: Dominio pubblico
Dimensione 6.23 MB
Formato Adobe PDF
6.23 MB Adobe PDF Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11379/527873
 Attenzione

Attenzione! I dati visualizzati non sono stati sottoposti a validazione da parte dell'ateneo

Citazioni
  • ???jsp.display-item.citation.pmc??? 9
  • Scopus 36
  • ???jsp.display-item.citation.isi??? 32
social impact