Photopolymerization processes are exploited in light exposure-based 3D printing technologies, where either a focused laser beam or a patterned light sheet allows layers of a UV curable, liquid pre-polymer to be solidified. Here we focus on the crucial, though often neglected, role of the layer thickness on photopolymerization. The temporal evolution of polymerization reactions occurring in droplets of acrylate-based oligomers and in photoresist films with varied thickness is investigated by means of an optical system, which is specifically designed for in -situ and real-time monitoring. The time needed for complete curing is found to increase as the polymerization volume is decreased below a characteristic threshold that depends on the specific reaction pathway. This behavior is rationalized by modeling the process through a size-dependent polymerization rate. Our study highlights that the formation of photopolymerized networks might be affected by the involved volumes regardless of the specific curing mechanisms, which could play a crucial role in optimizing photocuring-based additive manufacturing.

Impact of size effects on photopolymerization and its optical monitoring in-situ

Camposeo Andrea
;
Romano Luigi;Fabbri Filippo;Pisignano Dario
2022

Abstract

Photopolymerization processes are exploited in light exposure-based 3D printing technologies, where either a focused laser beam or a patterned light sheet allows layers of a UV curable, liquid pre-polymer to be solidified. Here we focus on the crucial, though often neglected, role of the layer thickness on photopolymerization. The temporal evolution of polymerization reactions occurring in droplets of acrylate-based oligomers and in photoresist films with varied thickness is investigated by means of an optical system, which is specifically designed for in -situ and real-time monitoring. The time needed for complete curing is found to increase as the polymerization volume is decreased below a characteristic threshold that depends on the specific reaction pathway. This behavior is rationalized by modeling the process through a size-dependent polymerization rate. Our study highlights that the formation of photopolymerized networks might be affected by the involved volumes regardless of the specific curing mechanisms, which could play a crucial role in optimizing photocuring-based additive manufacturing.
2022
Istituto Nanoscienze - NANO
Inglese
58
103020-1
103020-8
8
https://www.sciencedirect.com/science/article/pii/S2214860422004122
Esperti anonimi
Photopolymerization
Process monitoring
Optically transparent materials
Light scattering
Vat photopolymerization
Internazionale
7
info:eu-repo/semantics/article
262
Camposeo, Andrea; Arkadii, Aristein; Romano, Luigi; D'Elia, Francesca; Fabbri, Filippo; Zussman, Eyal; Pisignano, Dario
01 Contributo su Rivista::01.01 Articolo in rivista
open
   4-Dimensional printing for adaptive optoelectronic components
   xPRINT
   European Commission
   Horizon 2020 Framework Programme
   682157

   3D-Phys
   3D-Phys
   MIUR
   PRIN 2017
   2017PHRM8X
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/416133
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