Sign in to use this feature.

Years

Between: -

Subjects

remove_circle_outline
remove_circle_outline
remove_circle_outline

Journals

Article Types

Countries / Regions

Search Results (2)

Search Parameters:
Keywords = photocurable perfluoropolyethers

Order results
Result details
Results per page
Select all
Export citation of selected articles as:
14 pages, 2966 KB  
Article
Fiber-Based SERS-Fluidic Polymeric Platforms for Improved Optical Analysis of Liquids
by Caterina Credi, Caterina Dallari, Sara Nocentini, Gabriele Gatta, Elena Bianchi, Diederik S. Wiersma and Francesco S. Pavone
Bioengineering 2023, 10(6), 676; https://doi.org/10.3390/bioengineering10060676 - 1 Jun 2023
Cited by 3 | Viewed by 2977
Abstract
Downsizing surface-enhanced Raman spectroscopy (SERS) within microfluidic devices has opened interesting perspectives for the development of low-cost and portable (bio)sensors for the optical analysis of liquid samples. Despite the research efforts, SERS-fluidic devices still rely either on the use of expensive bulky set-ups [...] Read more.
Downsizing surface-enhanced Raman spectroscopy (SERS) within microfluidic devices has opened interesting perspectives for the development of low-cost and portable (bio)sensors for the optical analysis of liquid samples. Despite the research efforts, SERS-fluidic devices still rely either on the use of expensive bulky set-ups or on polymeric devices giving spurious background signals fabricated via expensive manufacturing processes. Here, polymeric platforms integrating fluidics and optics were fabricated with versatile designs allowing easy coupling with fiber-based Raman systems. For the first time, anti-fouling photocurable perfluoropolyether (PFPE) was explored for high-throughput SERS-integrating chip fabrication via replica molding of negative stamps obtained through standard and advanced fabrication processes. The PFPE devices comprised networks of channels for fluid handling and for optical fiber housing with multiple orientations. Embedded microfeatures were used to control the relative positioning of the fibers, thus guaranteeing the highest signal delivering and collection. The feasibility of PFPE devices as fiber-based SERS fluidic platforms was demonstrated through the straightforward acquisition of Raman-SERS spectra of a mixture of gold nanoparticles as SERS substrates with rhodamine 6G (Rh6G) at decreasing concentrations. In the presence of high-performing gold nanostars, the Rh6G signal was detectable at dilutions down to the nanomolar level even without tight focusing and working at low laser power—a key aspect for analyte detection in real-world biomedical and environmental applications. Full article
(This article belongs to the Special Issue Microfluidics and Miniaturized Systems in Bioengineering)
Show Figures

Figure 1

11 pages, 3781 KB  
Article
Highly Fluorinated Methacrylates for Optical 3D Printing of Microfluidic Devices
by Frederik Kotz, Patrick Risch, Dorothea Helmer and Bastian E. Rapp
Micromachines 2018, 9(3), 115; https://doi.org/10.3390/mi9030115 - 8 Mar 2018
Cited by 61 | Viewed by 11474
Abstract
Highly fluorinated perfluoropolyether (PFPE) methacrylates are of great interest for transparent and chemically resistant microfluidic chips. However, so far only a few examples of material formulations for three-dimensional (3D) printing of these polymers have been demonstrated. In this paper we show that microfluidic [...] Read more.
Highly fluorinated perfluoropolyether (PFPE) methacrylates are of great interest for transparent and chemically resistant microfluidic chips. However, so far only a few examples of material formulations for three-dimensional (3D) printing of these polymers have been demonstrated. In this paper we show that microfluidic chips can be printed using these highly fluorinated polymers by 3D stereolithography printing. We developed photocurable resin formulations that can be printed in commercial benchtop stereolithography printers. We demonstrate that the developed formulations can be printed with minimal cross-sectional area of 600 µm for monolithic embedded microfluidic channels and 200 µm for open structures. The printed and polymerized PFPE methacrylates show a good transmittance above 70% at wavelengths between 520–900 nm and a high chemical resistance when being exposed to organic solvents. Microfluidic mixers were printed to demonstrate the great variability of different designs that can be printed using stereolithography. Full article
(This article belongs to the Special Issue 3D Printed Microfluidic Devices)
Show Figures

Graphical abstract

Back to TopTop