Engineering deterministic, tunable, and reversible folds in graphene with the use of ultrafast laser micro-patterned stretchable polymer substrate

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Hauptverfasser: Saborio, A. F. Juarez, Bourquard, F., Galafassi, R., Claudel, A., Marty, L., Piednoir, A., Mercury, M., Fulcrand, R., Albin, C., Barnier, V., Garrelie, F., San-Miguel, A., Vialla, F.
Format: Preprint
Veröffentlicht: 2025
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author Saborio, A. F. Juarez
Bourquard, F.
Galafassi, R.
Claudel, A.
Marty, L.
Piednoir, A.
Mercury, M.
Fulcrand, R.
Albin, C.
Barnier, V.
Garrelie, F.
San-Miguel, A.
Vialla, F.
author_facet Saborio, A. F. Juarez
Bourquard, F.
Galafassi, R.
Claudel, A.
Marty, L.
Piednoir, A.
Mercury, M.
Fulcrand, R.
Albin, C.
Barnier, V.
Garrelie, F.
San-Miguel, A.
Vialla, F.
contents The unique atomic monolayer structure of graphene gives rise to a broad range of remarkable mechanical folding properties. However, significant challenges remain in effectively harnessing them in a controllable and scalable manner. In this study, we introduce an innovative approach that employs micron-scale cavities, fabricated through ultrafast laser patterning, in a stretchable polymer substrate to locally modulate adhesion and strain transfer to a graphene monolayer. This technique enables the deterministic induction of single folds in graphene with fold dimensions, width and height in the hundreds of nanometers, tunable through the geometry of the polymer cavities and the applied strain. Importantly, these folds are reversible, returning to a flat morphology with minimal structural damage, as confirmed by Raman spectroscopy. Additionally, our method allows for the creation of fields of folds with reproducible periodicity, defining clear potential for practical applications. These findings pave the way for the development of advanced devices that would leverage the strain and morphology-sensitive properties of graphene.
format Preprint
id arxiv_https___arxiv_org_abs_2506_18967
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Engineering deterministic, tunable, and reversible folds in graphene with the use of ultrafast laser micro-patterned stretchable polymer substrate
Saborio, A. F. Juarez
Bourquard, F.
Galafassi, R.
Claudel, A.
Marty, L.
Piednoir, A.
Mercury, M.
Fulcrand, R.
Albin, C.
Barnier, V.
Garrelie, F.
San-Miguel, A.
Vialla, F.
Mesoscale and Nanoscale Physics
The unique atomic monolayer structure of graphene gives rise to a broad range of remarkable mechanical folding properties. However, significant challenges remain in effectively harnessing them in a controllable and scalable manner. In this study, we introduce an innovative approach that employs micron-scale cavities, fabricated through ultrafast laser patterning, in a stretchable polymer substrate to locally modulate adhesion and strain transfer to a graphene monolayer. This technique enables the deterministic induction of single folds in graphene with fold dimensions, width and height in the hundreds of nanometers, tunable through the geometry of the polymer cavities and the applied strain. Importantly, these folds are reversible, returning to a flat morphology with minimal structural damage, as confirmed by Raman spectroscopy. Additionally, our method allows for the creation of fields of folds with reproducible periodicity, defining clear potential for practical applications. These findings pave the way for the development of advanced devices that would leverage the strain and morphology-sensitive properties of graphene.
title Engineering deterministic, tunable, and reversible folds in graphene with the use of ultrafast laser micro-patterned stretchable polymer substrate
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2506.18967