| Literature DB >> 30424278 |
Valentina Piccolo1, Andrea Chiappini2, Cristina Armellini3, Mario Barozzi4, Anna Lukowiak5, Pier-John A Sazio6, Alessandro Vaccari7, Maurizio Ferrari8,9, Daniele Zonta10,11.
Abstract
A chromatic vectorial strain sensor constituted by hexagonal voids on transparent elastomeric substrate has been successfully fabricated via soft colloidal lithography. Initially a highly ordered 1.6 microns polystyrene spheres monolayer colloidal crystal has been realized by wedge-shaped cell method and used as a suitable mold to replicate the periodic structure on a polydimethylsiloxane sheet. The replicated 2D array is characterized by high periodicity and regularity over a large area, as evidenced by morphological and optical properties obtained by means of SEM, absorption and reflectance spectroscopy. In particular, the optical features of the nanostructured elastomer have been investigated in respect to uniaxial deformation up to 10% of its initial length, demonstrating a linear, tunable and reversible response, with a sensitivity of 4.5 ± 0.1 nm/%. Finally, it has been demonstrated that the specific geometrical configuration allows determining simultaneously the vectorial strain-stress information in the x and y directions.Entities:
Keywords: 2D colloidal crystal; micro/nano patterning; soft colloidal lithography; strain microsensor; vectorial strain gauge
Year: 2018 PMID: 30424278 PMCID: PMC6082248 DOI: 10.3390/mi9070345
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
Figure 1Sketch of the experimental set-up for the 2D diffraction grating measurements.
Figure 2Schematic illustration of the experimental approach employed for the realization of 2D PDMS replica patterns (a) formation of 2D colloidal crystal by means of wedge-shaped cell (b) functionalization and infiltration of PDMS by capillary force; (c) peeling off PDMS infiltrated PS colloidal crystal; (d) chemical etching of the PS spheres.
Figure 3(a) Optical microscopy image of a typical area of the 2D colloidal crystals self-assembled using a wedge-shaped cell (scale bar of 2 μm). (b) Transmittance spectrum obtained on a 2D colloidal crystal deposited on a v-SiO2 substrate. The individual spectra are offset vertically by 5% for clarity (the black spectrum is the original one).
Figure 4(a) Sketch of the concave structure obtained via soft lithography (not in scale) (b) SEM surface image of PDMS inverted colloidal crystal. (c) detail of the ordered hexagonal array. (d) Photograph of hexagonal voids on transparent elastomeric substrate.
Figure 5Strain induced diffraction spot movements: (a) Optical diffraction pattern without strain; inset: labelling of the investigated spots (1 and 6); (b) optical diffraction with a strain (ε) ε = 10% along the horizontal direction.
Figure 6Reflectance spectra collected considering: (a) spot 1 as a function of the applied strain; (b) spot 6 as a function of the applied strain.
Figure 7Experimental relationship between the peak position of the diffracted light (a) for spot 1 and (b) spot 6 in respect of the strain as a result of the elongation tests, (error bars are hidden by the circle points).