DocumentCode :
2608068
Title :
Patterned microfluidic channels using self-assembled hydroxy-phenyl porphyrin monolayer
Author :
Nayak, Kaushik ; Kulkarni, Prasanna D. ; Deepu, A. ; Sitaraman, V.R. ; Punidha, S. ; Saha, Auro Ashish ; Ravikanth, M. ; Mitra, Sushanta K. ; Mukherji, S. ; Rao, V. Ramgopal
Author_Institution :
Centre for Res. in Nanotechnol. & Sci., Indian Inst. of Technol. Bombay, Mumbai
fYear :
2007
fDate :
2-5 Aug. 2007
Firstpage :
1235
Lastpage :
1239
Abstract :
In order to achieve patterned surfaces for microfluidic applications, we show for the first time the use of self-assembled monolayer (SAM) of Hydroxy-phenyl porphyrin on SiO2 surface following a chemical procedure. The SAM was characterized using ground state UV-absorption spectroscopy and H2O contact angle measurements. The UV-absorption spectra of the SAM exhibited a ~ 8 nm red shift in the Soret band compared to the porphyrin in toluene. This indicated the side-by-side orientation of the self assembled porphyrin molecules on SiO2. The molecular self-assembly is expected to be randomly oriented because of amorphous nature of the substrate. Sessile deionized (DI) water drop of 50 muL on SAM exhibited a contact angle of 75plusmn3. which is significantly higher than the contact angle of 33plusmn2. measured on the SiO2 substrate. In this paper, we also demonstrate an approach of patterning the SiO2 surface with the porphyrin SAM in order to achieve alternate hydrophobic/hydrophilic surfaces on a p-type device-quality (111) Si wafer. The application of such patterned surfaces is demonstrated with the help of microfluidic simulations study. A three-dimensional numerical simulation of flow in patterned microchannels with alternate layers of hydrophilic and hydrophobic surfaces at the bottom wall is studied here. Volume of fluid method (VOF) is used for simulating the free surface flow in the microchannel. Non-symmetric meniscus profiles with varying amplitude and shapes are obtained by changing the contact angles of the hydrophilic and hydrophobic surfaces. Flow instability is found to increase in the microchannels with patterned surfaces containing a variation in contact angles.
Keywords :
contact angle; flow instability; flow simulation; microchannel flow; microfluidics; monolayers; self-assembly; ultraviolet spectra; (111) Si wafer; SiO2; Soret band; UV-absorption spectroscopy; contact angle measurements; contact angles; flow instability; hydrophobic-hydrophilic surfaces; hydroxy-phenyl porphyrin; microchannel; molecular self-assembly; nonsymmetric meniscus profiles; patterned microfluidic channels; self-assembled monolayer; sessile deionized water drop; surface flow; toluene; Amorphous materials; Chemicals; Goniometers; Microchannel; Microfluidics; Numerical simulation; Self-assembly; Shape; Spectroscopy; Stationary state; Contact angle; SAM; UV; capillary flow; microchannel; patterned surface; porphyrin;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nanotechnology, 2007. IEEE-NANO 2007. 7th IEEE Conference on
Conference_Location :
Hong Kong
Print_ISBN :
978-1-4244-0607-4
Electronic_ISBN :
978-1-4244-0608-1
Type :
conf
DOI :
10.1109/NANO.2007.4601406
Filename :
4601406
Link To Document :
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