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Microspot sensing based on surface-enhanced fluorescence from nanosculptured thin films

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Microspot sensing based on surface-enhanced fluorescence from nanosculptured thin films. / Karabchevsky, A.; Abdulhalim, I.; Khare, C. et al.
In: Journal of Nanophotonics, Vol. 6, No. 1, 061508, 12.06.2012.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Karabchevsky, A, Abdulhalim, I, Khare, C & Rauschenbach, B 2012, 'Microspot sensing based on surface-enhanced fluorescence from nanosculptured thin films', Journal of Nanophotonics, vol. 6, no. 1, 061508. https://doi.org/10.1117/1.JNP.6.061508

APA

Karabchevsky, A., Abdulhalim, I., Khare, C., & Rauschenbach, B. (2012). Microspot sensing based on surface-enhanced fluorescence from nanosculptured thin films. Journal of Nanophotonics, 6(1), Article 061508. https://doi.org/10.1117/1.JNP.6.061508

Vancouver

Karabchevsky A, Abdulhalim I, Khare C, Rauschenbach B. Microspot sensing based on surface-enhanced fluorescence from nanosculptured thin films. Journal of Nanophotonics. 2012 Jun 12;6(1):061508. doi: 10.1117/1.JNP.6.061508

Author

Karabchevsky, A. ; Abdulhalim, I. ; Khare, C. et al. / Microspot sensing based on surface-enhanced fluorescence from nanosculptured thin films. In: Journal of Nanophotonics. 2012 ; Vol. 6, No. 1.

Bibtex

@article{d545d76ccaf048ceb5f20dcc4b7cd4c9,
title = "Microspot sensing based on surface-enhanced fluorescence from nanosculptured thin films",
abstract = "Nanosculptured thin films (STF) are prepared by the oblique angle deposition technique and take different forms of nano columnar structures. Varieties of STFs were investigated to find the optimum structure for biosensing based on the surface enhanced fluorescence. A comparative study was carried out with STFs containing the nanocolumnar structures that differ in their shape, height (h), and tilt angle with respect to the surface (α), thickness (d), and arrangement. The greatest enhancement of the fluorescent signal was found for Ag-based STFs on Si(100), giving an enhancement factor of ×71, where h = 400  nm, d = 75  nm, and α = 23° relative to Ag closed film using fluorescent dye Rhodamine 123. We immobilized the fluorescent receptor to the thiol self-assembly monolayer on Ag-based STF and Ag dense film to demonstrate the applications of STFs for specific biosensing. Upon excitation of the fluorophore by an Hg light source, a CCD camera with controlled exposure time would detect the pattern of fluorescent receptor Anti-Rabbit IgG on the surfaces. A specially designed optical fiber housing attached to the microscope allowed quantitative measurement of the fluorescence spectrum on a microspot parallel to the image grab.",
author = "A. Karabchevsky and I. Abdulhalim and C. Khare and B. Rauschenbach",
year = "2012",
month = jun,
day = "12",
doi = "10.1117/1.JNP.6.061508",
language = "Undefined/Unknown",
volume = "6",
journal = "Journal of Nanophotonics",
number = "1",

}

RIS

TY - JOUR

T1 - Microspot sensing based on surface-enhanced fluorescence from nanosculptured thin films

AU - Karabchevsky, A.

AU - Abdulhalim, I.

AU - Khare, C.

AU - Rauschenbach, B.

PY - 2012/6/12

Y1 - 2012/6/12

N2 - Nanosculptured thin films (STF) are prepared by the oblique angle deposition technique and take different forms of nano columnar structures. Varieties of STFs were investigated to find the optimum structure for biosensing based on the surface enhanced fluorescence. A comparative study was carried out with STFs containing the nanocolumnar structures that differ in their shape, height (h), and tilt angle with respect to the surface (α), thickness (d), and arrangement. The greatest enhancement of the fluorescent signal was found for Ag-based STFs on Si(100), giving an enhancement factor of ×71, where h = 400  nm, d = 75  nm, and α = 23° relative to Ag closed film using fluorescent dye Rhodamine 123. We immobilized the fluorescent receptor to the thiol self-assembly monolayer on Ag-based STF and Ag dense film to demonstrate the applications of STFs for specific biosensing. Upon excitation of the fluorophore by an Hg light source, a CCD camera with controlled exposure time would detect the pattern of fluorescent receptor Anti-Rabbit IgG on the surfaces. A specially designed optical fiber housing attached to the microscope allowed quantitative measurement of the fluorescence spectrum on a microspot parallel to the image grab.

AB - Nanosculptured thin films (STF) are prepared by the oblique angle deposition technique and take different forms of nano columnar structures. Varieties of STFs were investigated to find the optimum structure for biosensing based on the surface enhanced fluorescence. A comparative study was carried out with STFs containing the nanocolumnar structures that differ in their shape, height (h), and tilt angle with respect to the surface (α), thickness (d), and arrangement. The greatest enhancement of the fluorescent signal was found for Ag-based STFs on Si(100), giving an enhancement factor of ×71, where h = 400  nm, d = 75  nm, and α = 23° relative to Ag closed film using fluorescent dye Rhodamine 123. We immobilized the fluorescent receptor to the thiol self-assembly monolayer on Ag-based STF and Ag dense film to demonstrate the applications of STFs for specific biosensing. Upon excitation of the fluorophore by an Hg light source, a CCD camera with controlled exposure time would detect the pattern of fluorescent receptor Anti-Rabbit IgG on the surfaces. A specially designed optical fiber housing attached to the microscope allowed quantitative measurement of the fluorescence spectrum on a microspot parallel to the image grab.

UR - http://www.scopus.com/inward/record.url?eid=2-s2.0-84864135828&partnerID=MN8TOARS

U2 - 10.1117/1.JNP.6.061508

DO - 10.1117/1.JNP.6.061508

M3 - Journal article

VL - 6

JO - Journal of Nanophotonics

JF - Journal of Nanophotonics

IS - 1

M1 - 061508

ER -