DocumentCode
47704
Title
Hybridization of Fano and Vibrational Resonances in Surface-Enhanced Infrared Absorption Spectroscopy of Streptavidin Monolayers on Metamaterial Substrates
Author
Alici, Kamil Boratay
Author_Institution
Univ. of Texas at Austin, Austin, TX, USA
Volume
13
Issue
2
fYear
2014
fDate
Mar-14
Firstpage
216
Lastpage
221
Abstract
We present spectral hybridization of organic and inorganic resonant materials and related bio-sensing mechanism. We utilized a bound protein (streptavidin) and a Fano-resonant metasurface to illustrate the concept. The technique allows us to investigate the vibrational modes of the streptavidin and how they couple to the underlying metasurface. This optical, label-free, nonperturbative technique is supported by a coupled mode-theory analysis that provides information on the structure and orientation of bound proteins. We can also simultaneously monitor the binding of analytes to the surface through monitoring the shift of the metasurface resonance. All of this data opens up interesting opportunities for applications in biosensing, molecular electronics and proteomics.
Keywords
biosensors; coupled mode analysis; infrared spectra; molecular biophysics; monolayers; proteins; vibrational states; Fano resonance; Fano-resonant metasurface; analyte binding; biosensing; biosensing mechanism; bound protein; coupled mode-theory; inorganic resonant materials; metamaterial substrates; metasurface resonance; molecular electronics; optical label-free nonperturbative technique; organic resonant materials; proteomics; spectral hybridization; streptavidin monolayers; surface-enhanced infrared absorption spectroscopy; vibrational modes; vibrational resonance; Arrays; Gold; Metamaterials; Plasmons; Proteins; Spectroscopy; Substrates; Avidin; biosensor; biotin; collective excitation; enhancement factor; fano resonance; metamaterial; microscopy; monolayer; nanoantenna; near-field effects; self-assembly; spectroscopy; streptavidin; surface plasmon; surface-enhanced infrared absorption (SEIRA); temporal-coupled mode theory; thin films;
fLanguage
English
Journal_Title
Nanotechnology, IEEE Transactions on
Publisher
ieee
ISSN
1536-125X
Type
jour
DOI
10.1109/TNANO.2013.2296896
Filename
6701377
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