Transfer of 1D Photonic Crystals via Spatially Resolved Hydrophobization
Autor: | Katalin Szendrei-Temesi, Pirmin Ganter, Susanna Guderley, Dimitra Chatzitheodoridou, Alberto Jiménez-Solano, Bettina V. Lotsch, Marie Däntl |
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Rok vydání: | 2021 |
Předmět: |
Optics and Photonics
Photons Materials science Fabrication business.industry Water Nanochemistry 02 engineering and technology General Chemistry Substrate (electronics) 010402 general chemistry 021001 nanoscience & nanotechnology 01 natural sciences Exfoliation joint 0104 chemical sciences Biomaterials Etching (microfabrication) Optoelectronics General Materials Science Photonics 0210 nano-technology business Layer (electronics) Biotechnology Photonic crystal |
Zdroj: | Small. 17:2007864 |
ISSN: | 1613-6829 1613-6810 |
DOI: | 10.1002/smll.202007864 |
Popis: | 1D photonic crystals (1DPCs) are well known from a variety of applications ranging from medical diagnostics to optical fibers and optoelectronics. However, large-scale application is still limited due to complex fabrication processes and bottlenecks in transferring 1DPCs to arbitrary substrates and pattern creation. These challenges were addressed by demonstrating the transfer of millimeter- to centimeter-scale 1DPC sensors comprised of alternating layers of H3 Sb3 P2 O14 nanosheets and TiO2 nanoparticles based on a non-invasive chemical approach. By depositing the 1DPC on a sacrificial layer of lithium tin sulfide nanosheets and hydrophobizing only the 1DPC by intercalation of n-octylamine via the vapor phase the 1DPC can be detached from the substrate by immersing the sample in water. Upon exfoliation of the hydrophilic sacrificial layer, the freestanding 1DPC remains at the water-air interface. In a second step, it can be transferred to arbitrary surfaces such as curved glass. In addition, the transfer of patterned 1DPCs is demonstrated by combining the sacrificial layer approach with area-resolved intercalation and etching. The fact that the sensing capability of the 1DPC is not impaired and can be modified after transfer renders this method a generic platform for the fabrication of photonic devices. |
Databáze: | OpenAIRE |
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