Three-Dimensional Self-Organization in Nanocomposite Layered Systems by Ultrafast Laser Pulses.
Zeming LiuJan SiegelMario Garcia-LechugaThierry EpicierYaya LefkirStéphanie ReynaudMatthieu BugnetFrancis VocansonJavier SolisGuy VitrantNathalie DestouchesPublished in: ACS nano (2017)
Controlling plasmonic systems with nanometer resolution in transparent films and their colors over large nonplanar areas is a key issue for spreading their use in various industrial fields. Using light to direct self-organization mechanisms provides high-speed and flexible processes to meet this challenge. Here, we describe a route for the laser-induced self-organization of metallic nanostructures in 3D. Going beyond the production of planar nanopatterns, we demonstrate that ultrafast laser-induced excitation combined with nonlinear feedback mechanisms in a nanocomposite thin film can lead to 3D self-organized nanostructured films. The process, which can be extended to complex layered composite systems, produces highly uniform large-area nanopatterns. We show that 3D self-organization originates from the simultaneous excitation of independent optical modes at different depths in the film and is activated by the plasmon-induced charge separation and thermally induced NP growth mechanisms. This laser color marking technique enables multiplexed optical image encoding and the generated nanostructured Ag NPs:TiO2 films offer great promise for applications in solar energy harvesting, photocatalysis, or photochromic devices.
Keyphrases
- high speed
- energy transfer
- quantum dots
- reduced graphene oxide
- visible light
- atomic force microscopy
- room temperature
- highly efficient
- high glucose
- high resolution
- carbon nanotubes
- diabetic rats
- gold nanoparticles
- single molecule
- drug induced
- single cell
- wastewater treatment
- solid phase extraction
- big data
- mass spectrometry
- liquid chromatography
- deep learning
- risk assessment
- solar cells
- electron transfer