Title :
Coupling evaporation-based, microfluidic concentration and confocal fluorescence spectroscopy
Author :
Puleo, C.M. ; Yeh, H.C. ; Liu, K.J. ; Rane, T. ; Wang, T.H.
Author_Institution :
Johns Hopkins Univ., Baltimore
Abstract :
Detection limits in confocal fluorescence spectroscopy (CFS) have traditionally been restrained by the low molecular detection efficiencies associated with femtoliter probe volumes. In this report, we address this issue by designing a microfluidic evaporator capable of accepting large sample volumes and concentrating biomolecules to a nanoliter-sized, interrogation chamber. Single molecule fluorescence detection within this chamber is enhanced through microfluidic recirculation, enabling single molecule analysis comparable to traditional capillary-based platforms. Proof of concept is demonstrated using a 10X sample concentrator upstream to a 5 nanoliter CFS detection chamber and recording the subsequent increase in single molecule fluorescent bursts. This marriage of active microfluidics and sample processing, and CFS technology offers a novel means of overcoming the limits of single molecule detection in solution.
Keywords :
fluorescence spectroscopy; microfluidics; confocal fluorescence spectroscopy; microfluidic concentration; microfluidic evaporator; molecular detection; molecule analysis; Biomedical optical imaging; Fluorescence; Microfluidics; Optical pumping; Optical sensors; Probes; Pumps; Spectroscopy; Ultrafast optics; Valves;
Conference_Titel :
Micro Electro Mechanical Systems, 2008. MEMS 2008. IEEE 21st International Conference on
Conference_Location :
Tucson, AZ
Print_ISBN :
978-1-4244-1792-6
Electronic_ISBN :
1084-6999
DOI :
10.1109/MEMSYS.2008.4443627