Wrinkling prediction, formation and evolution in thin films adhering on polymeric substrata

Wrinkling has recently attracted an increasing interest by suggesting a number of unforeseeable applications in many emerging material science and engineering fields. If guided and somehow designed, wrinkles could be in fact used as an alternative printing way for realizing complex surface geometrie...

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Main Authors: A. Cutolo, V. Pagliarulo, F. Merola, S. Coppola, P. Ferraro, M. Fraldi
Format: Article
Language:English
Published: Elsevier 2020-02-01
Series:Materials & Design
Online Access:http://www.sciencedirect.com/science/article/pii/S026412751930752X
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spelling doaj-733925ba5e1849f3823af8514351e3ba2020-11-25T02:29:51ZengElsevierMaterials & Design0264-12752020-02-01187Wrinkling prediction, formation and evolution in thin films adhering on polymeric substrataA. Cutolo0V. Pagliarulo1F. Merola2S. Coppola3P. Ferraro4M. Fraldi5Department of Structures for Engineering and Architecture, University of Napoli Federico II, Napoli, ItalyInstitute of Applied Sciences and Intelligent Systems (CNR-ISASI), National Research Council of Italy, Via Campi Flegrei 34, 80078 Pozzuoli (NA), ItalyInstitute of Applied Sciences and Intelligent Systems (CNR-ISASI), National Research Council of Italy, Via Campi Flegrei 34, 80078 Pozzuoli (NA), ItalyInstitute of Applied Sciences and Intelligent Systems (CNR-ISASI), National Research Council of Italy, Via Campi Flegrei 34, 80078 Pozzuoli (NA), ItalyInstitute of Applied Sciences and Intelligent Systems (CNR-ISASI), National Research Council of Italy, Via Campi Flegrei 34, 80078 Pozzuoli (NA), Italy; Corresponding author.Department of Structures for Engineering and Architecture, University of Napoli Federico II, Napoli, Italy; Institute of Applied Sciences and Intelligent Systems (CNR-ISASI), National Research Council of Italy, Via Campi Flegrei 34, 80078 Pozzuoli (NA), ItalyWrinkling has recently attracted an increasing interest by suggesting a number of unforeseeable applications in many emerging material science and engineering fields. If guided and somehow designed, wrinkles could be in fact used as an alternative printing way for realizing complex surface geometries and thus employed as an innovative bottom-up process in the fabrication of nano- and micro-devices. For these reasons, the prediction of wrinkles of films adhering on flat as well as on structured substrata is a challenging task, genesis and development of the phenomenon being not yet completely understood both when thin membranes are coupled with soft supports and in cases where the geometry of the surfaces are characterized by complex three-dimensional profiles. Here we investigate the experimental formation of new intriguing and somehow unforeseeable wrinkled patterns achieved on periodic structures, by showing prediction through a new hybrid analytical-numerical strategy capable to overcome some common obstacles encountered in modeling film wrinkling on flat and 3D-shaped substrata. The proposed approach, which drastically reduces the computational effort, furnishes a helpful way for predicting both qualitative and quantitative results in terms of wrinkling patterns, magnitude and wavelength, by also allowing to follow the onset of film instabilities and the progressive evolution of the phenomenon until its final stage. Keywords: Thin film, Wrinkling, PDMS substrates, Lithium niobate crystals, FEM simulationshttp://www.sciencedirect.com/science/article/pii/S026412751930752X
collection DOAJ
language English
format Article
sources DOAJ
author A. Cutolo
V. Pagliarulo
F. Merola
S. Coppola
P. Ferraro
M. Fraldi
spellingShingle A. Cutolo
V. Pagliarulo
F. Merola
S. Coppola
P. Ferraro
M. Fraldi
Wrinkling prediction, formation and evolution in thin films adhering on polymeric substrata
Materials & Design
author_facet A. Cutolo
V. Pagliarulo
F. Merola
S. Coppola
P. Ferraro
M. Fraldi
author_sort A. Cutolo
title Wrinkling prediction, formation and evolution in thin films adhering on polymeric substrata
title_short Wrinkling prediction, formation and evolution in thin films adhering on polymeric substrata
title_full Wrinkling prediction, formation and evolution in thin films adhering on polymeric substrata
title_fullStr Wrinkling prediction, formation and evolution in thin films adhering on polymeric substrata
title_full_unstemmed Wrinkling prediction, formation and evolution in thin films adhering on polymeric substrata
title_sort wrinkling prediction, formation and evolution in thin films adhering on polymeric substrata
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2020-02-01
description Wrinkling has recently attracted an increasing interest by suggesting a number of unforeseeable applications in many emerging material science and engineering fields. If guided and somehow designed, wrinkles could be in fact used as an alternative printing way for realizing complex surface geometries and thus employed as an innovative bottom-up process in the fabrication of nano- and micro-devices. For these reasons, the prediction of wrinkles of films adhering on flat as well as on structured substrata is a challenging task, genesis and development of the phenomenon being not yet completely understood both when thin membranes are coupled with soft supports and in cases where the geometry of the surfaces are characterized by complex three-dimensional profiles. Here we investigate the experimental formation of new intriguing and somehow unforeseeable wrinkled patterns achieved on periodic structures, by showing prediction through a new hybrid analytical-numerical strategy capable to overcome some common obstacles encountered in modeling film wrinkling on flat and 3D-shaped substrata. The proposed approach, which drastically reduces the computational effort, furnishes a helpful way for predicting both qualitative and quantitative results in terms of wrinkling patterns, magnitude and wavelength, by also allowing to follow the onset of film instabilities and the progressive evolution of the phenomenon until its final stage. Keywords: Thin film, Wrinkling, PDMS substrates, Lithium niobate crystals, FEM simulations
url http://www.sciencedirect.com/science/article/pii/S026412751930752X
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