Cargando…

High-Resolution 3D Fabrication of Glass Fiber-Reinforced Polymer Nanocomposite (FRPN) Objects by Two-Photon Direct Laser Writing

[Image: see text] This paper reports on the nanofabrication of a fiber-reinforced polymer nanocomposite (FRPN) by two-photon direct laser writing (TP-DLW) using silica nanowires (SiO(2) NWs) as nanofillers, since they feature a refractive index very close to that of the photoresist used as a polymer...

Descripción completa

Detalles Bibliográficos
Autores principales: Ritacco, Tiziana, Di Cianni, Wera, Perziano, Dario, Magarò, Pietro, Convertino, Annalisa, Maletta, Carmine, De Luca, Antonio, Sanz de León, Alberto, Giocondo, Michele
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9026244/
https://www.ncbi.nlm.nih.gov/pubmed/35394738
http://dx.doi.org/10.1021/acsami.1c21708
_version_ 1784691077186322432
author Ritacco, Tiziana
Di Cianni, Wera
Perziano, Dario
Magarò, Pietro
Convertino, Annalisa
Maletta, Carmine
De Luca, Antonio
Sanz de León, Alberto
Giocondo, Michele
author_facet Ritacco, Tiziana
Di Cianni, Wera
Perziano, Dario
Magarò, Pietro
Convertino, Annalisa
Maletta, Carmine
De Luca, Antonio
Sanz de León, Alberto
Giocondo, Michele
author_sort Ritacco, Tiziana
collection PubMed
description [Image: see text] This paper reports on the nanofabrication of a fiber-reinforced polymer nanocomposite (FRPN) by two-photon direct laser writing (TP-DLW) using silica nanowires (SiO(2) NWs) as nanofillers, since they feature a refractive index very close to that of the photoresist used as a polymeric matrix. This allows for the best resolution offered by the TP-DLW technique, even with high loads of SiO(2) NWs, up to 70 wt %. The FRPN presented an increase of approximately 4 times in Young’s modulus (8.23 GPa) and nanohardness (120 MPa) when compared to those of the bare photoresist, indicating how the proposed technique is well-suited for applications with higher structural requirements. Moreover, three different printing configurations can be implemented thanks to the use of silicon chips, on which the SiO(2) NWs are grown, as fabrication substrates. First, they can be effectively used as an adhesive layer when the laser beam is focused at the interface with the silicon substrate. Second, they can be used as a sacrificial layer, when the laser beam is focused in a plane inside the SiO(2) NW layer. Third, only the outer shell of the object is printed so that the SiO(2) NW tangle acts as the internal skeleton for the structure being fabricated in the so-called shell and scaffold printing strategy.
format Online
Article
Text
id pubmed-9026244
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-90262442022-04-25 High-Resolution 3D Fabrication of Glass Fiber-Reinforced Polymer Nanocomposite (FRPN) Objects by Two-Photon Direct Laser Writing Ritacco, Tiziana Di Cianni, Wera Perziano, Dario Magarò, Pietro Convertino, Annalisa Maletta, Carmine De Luca, Antonio Sanz de León, Alberto Giocondo, Michele ACS Appl Mater Interfaces [Image: see text] This paper reports on the nanofabrication of a fiber-reinforced polymer nanocomposite (FRPN) by two-photon direct laser writing (TP-DLW) using silica nanowires (SiO(2) NWs) as nanofillers, since they feature a refractive index very close to that of the photoresist used as a polymeric matrix. This allows for the best resolution offered by the TP-DLW technique, even with high loads of SiO(2) NWs, up to 70 wt %. The FRPN presented an increase of approximately 4 times in Young’s modulus (8.23 GPa) and nanohardness (120 MPa) when compared to those of the bare photoresist, indicating how the proposed technique is well-suited for applications with higher structural requirements. Moreover, three different printing configurations can be implemented thanks to the use of silicon chips, on which the SiO(2) NWs are grown, as fabrication substrates. First, they can be effectively used as an adhesive layer when the laser beam is focused at the interface with the silicon substrate. Second, they can be used as a sacrificial layer, when the laser beam is focused in a plane inside the SiO(2) NW layer. Third, only the outer shell of the object is printed so that the SiO(2) NW tangle acts as the internal skeleton for the structure being fabricated in the so-called shell and scaffold printing strategy. American Chemical Society 2022-04-08 2022-04-20 /pmc/articles/PMC9026244/ /pubmed/35394738 http://dx.doi.org/10.1021/acsami.1c21708 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Ritacco, Tiziana
Di Cianni, Wera
Perziano, Dario
Magarò, Pietro
Convertino, Annalisa
Maletta, Carmine
De Luca, Antonio
Sanz de León, Alberto
Giocondo, Michele
High-Resolution 3D Fabrication of Glass Fiber-Reinforced Polymer Nanocomposite (FRPN) Objects by Two-Photon Direct Laser Writing
title High-Resolution 3D Fabrication of Glass Fiber-Reinforced Polymer Nanocomposite (FRPN) Objects by Two-Photon Direct Laser Writing
title_full High-Resolution 3D Fabrication of Glass Fiber-Reinforced Polymer Nanocomposite (FRPN) Objects by Two-Photon Direct Laser Writing
title_fullStr High-Resolution 3D Fabrication of Glass Fiber-Reinforced Polymer Nanocomposite (FRPN) Objects by Two-Photon Direct Laser Writing
title_full_unstemmed High-Resolution 3D Fabrication of Glass Fiber-Reinforced Polymer Nanocomposite (FRPN) Objects by Two-Photon Direct Laser Writing
title_short High-Resolution 3D Fabrication of Glass Fiber-Reinforced Polymer Nanocomposite (FRPN) Objects by Two-Photon Direct Laser Writing
title_sort high-resolution 3d fabrication of glass fiber-reinforced polymer nanocomposite (frpn) objects by two-photon direct laser writing
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9026244/
https://www.ncbi.nlm.nih.gov/pubmed/35394738
http://dx.doi.org/10.1021/acsami.1c21708
work_keys_str_mv AT ritaccotiziana highresolution3dfabricationofglassfiberreinforcedpolymernanocompositefrpnobjectsbytwophotondirectlaserwriting
AT dicianniwera highresolution3dfabricationofglassfiberreinforcedpolymernanocompositefrpnobjectsbytwophotondirectlaserwriting
AT perzianodario highresolution3dfabricationofglassfiberreinforcedpolymernanocompositefrpnobjectsbytwophotondirectlaserwriting
AT magaropietro highresolution3dfabricationofglassfiberreinforcedpolymernanocompositefrpnobjectsbytwophotondirectlaserwriting
AT convertinoannalisa highresolution3dfabricationofglassfiberreinforcedpolymernanocompositefrpnobjectsbytwophotondirectlaserwriting
AT malettacarmine highresolution3dfabricationofglassfiberreinforcedpolymernanocompositefrpnobjectsbytwophotondirectlaserwriting
AT delucaantonio highresolution3dfabricationofglassfiberreinforcedpolymernanocompositefrpnobjectsbytwophotondirectlaserwriting
AT sanzdeleonalberto highresolution3dfabricationofglassfiberreinforcedpolymernanocompositefrpnobjectsbytwophotondirectlaserwriting
AT giocondomichele highresolution3dfabricationofglassfiberreinforcedpolymernanocompositefrpnobjectsbytwophotondirectlaserwriting