Local Light-Induced Modification of the Inside of Microfluidic Glass Chips.

Langmuir

Laboratory of Organic Chemistry, Wageningen University, Dreijenplein 8, 6703 HB Wageningen, The Netherlands.

Published: March 2016

AI Article Synopsis

  • The study introduces a new method for modifying the surface of hydrogen-terminated glass (H-glass) with organic monolayers using light, particularly wavelengths that standard glass can transmit.
  • The modifications were characterized using various techniques, showing a successful design of an organic layer that can enable further functionalization and adjust the surface properties of the glass.
  • This innovative approach has potential applications in biomedical and chemical fields, including the creation of photopatterned layers for controlling liquid flow in microchannels.

Article Abstract

The ability to locally functionalize the surface of glass allows for myriad biomedical and chemical applications. This would be the case if the surface functionalization can be induced using light with wavelengths for which standard glass is almost transparent. To this aim, we present the first example of a photochemical modification of hydrogen-terminated glass (H-glass) with terminal alkenes. Both flat glass surfaces and the inside of glass microchannels were modified with a well-defined, covalently attached organic monolayer using a range of wavelengths, including sub-band-gap 302 nm ultraviolet light. A detailed characterization thereof was conducted by measurements of the static water contact angle, X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), and scanning Auger microscopy (SAM). Germanium attenuated total reflection Fourier transform infrared (GATR-FTIR) indicates that the mechanism of the surface modification proceeds via an anti-Markovnikov substitution. Reacting H-glass with 10-trifluoro-acetamide-1-decene (TFAAD) followed by basic hydrolysis affords the corresponding primary amine-terminated monolayer, enabling additional functionalization of the substrate. Furthermore, we show the successful formation of a photopatterned amine layer by the specific attachment of fluorescent nanoparticles in very discrete regions. Finally, a microchannel was photochemically patterned with a functional linker allowing for surface-directed liquid flow. These results demonstrate that H-glass can be modified with a functional tailor-made organic monolayer, has highly tunable wetting properties, and displays significant potential for further applications.

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Source
http://dx.doi.org/10.1021/acs.langmuir.5b04621DOI Listing

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