EBL fabricated plasmonic nanostructures for sensing applications
buir.advisor | Özbay, Ekmel | |
dc.contributor.author | Cinel, Neval A | |
dc.date.accessioned | 2016-01-08T20:02:44Z | |
dc.date.available | 2016-01-08T20:02:44Z | |
dc.date.issued | 2013 | |
dc.description | Ankara : The Department of Electrical and Electronics Engineering and the Graduate School of Engineering and Science of Bilkent University, 2013. | en_US |
dc.description | Thesis (Ph. D.) -- Bilkent University, 2013. | en_US |
dc.description | Includes bibliographical references leaves 74-84. | en_US |
dc.description.abstract | Plasmonics is a major branch of photonics dealing with light-matter interactions in metallic nanostructures. Plasmonic devices provide extreme confinement of electromagnetic oscillations to very small volumes beyond diffraction limit at optical frequencies. Our aim in this thesis study is to demonstrate the utilization of plasmonics for several applications such as optical localized surface plasmon resonance (LSPR) biosensor design, enhancement of signal intensity in surface enhanced Raman spectroscopy (SERS) and absorption enhancement in photodetectors. Firstly, a sensor structure that detects the changes in the refractive index of the surrounding medium by optical transmission measurements was designed. Periodic silver nano-disk arrays on sapphire substrate written by Electron-Beam Lithography (EBL) were used for this aim. Optical characterization was done through transmission/reflection measurements and supported by finite difference time domain (FDTD) simulations. The sensor was first verified by a biotinavidin bioassay. Real time binding studies showed that the sensor response was saturated within the first 30 minutes of application. Concentration dependency of the sensor structure showed an adequate response at the 1 nM-100 nM range. The refractive index sensitivity of the sensor was determined as 354 nm/RIU. The idea was finally applied to the detection of heat killed E.Coli bacteria. Promising results that indicate the possibility of using the sensor for bacteria detection was obtained. Secondly, tandem truncated nano-cones composed of Au-SiO2-Au layers that exhibit highly tunable double resonance behavior were shown to increase SERS signal intensity, for the first time. Enhancement factor (EF) calculations indicated an enhancement factor of 3.86 x107 . The double resonance design showed a 10 fold better enhancement when compared to its single resonance counterpart. This enhancement is believed to be even more prominent for applications such as NIR-SERS and Surface Enhanced Hyper Raman Scattering (SEHRS). Another SERS substrate containing dual layer, periodic, “coupled” concentric rings, separated by a dielectric spacer provided Raman signal intensity 630 times larger than plain gold film and 8 times larger than an “etched” concentric ring structure. The design provided an enhancement factor of 1.67x107 . Finally, Al nanoparticles with plasmonic resonance at UV wavelengths fabricated in between the Schottky contacts of an MSM detector on semi-insulating GaN was shown to yield 1.5 fold enhancement in absorption and photocurrent collection. Plasmonic enhancement in UV was studied for the first time with this study. Another UV-MSM photodetector on GaN that includes subwavelength apertures surrounded by nano-structured metal gratings was compared to a conventional design without gratings. Results indicated an 8 fold enhancement in the photocurrent at the resonant wavelength. | en_US |
dc.description.provenance | Made available in DSpace on 2016-01-08T20:02:44Z (GMT). No. of bitstreams: 1 0006753.pdf: 3408031 bytes, checksum: 36a7553934d50c77dfc6649a0834e1f2 (MD5) | en |
dc.description.statementofresponsibility | Cinel, Neval A | en_US |
dc.format.extent | xvi, 84 leaves, illustrations, graphs | en_US |
dc.identifier.uri | http://hdl.handle.net/11693/16896 | |
dc.language.iso | English | en_US |
dc.rights | info:eu-repo/semantics/openAccess | en_US |
dc.subject | plasmonics | en_US |
dc.subject | surface plasmon polariton | en_US |
dc.subject | nano-particle | en_US |
dc.subject | localized surface plasmon resonance | en_US |
dc.subject | Surface Enhanced Raman Spectroscopy (SERS) | en_US |
dc.subject.lcc | QC176.8.P55 C55 2013 | en_US |
dc.subject.lcsh | Plasmons (Physics) | en_US |
dc.subject.lcsh | Nanoparticles. | en_US |
dc.subject.lcsh | Nanostructures--Optical properties. | en_US |
dc.subject.lcsh | Surface plasmon resonance. | en_US |
dc.subject.lcsh | Biosensors. | en_US |
dc.subject.lcsh | Raman spectroscopy. | en_US |
dc.subject.lcsh | Photonics. | en_US |
dc.title | EBL fabricated plasmonic nanostructures for sensing applications | en_US |
dc.type | Thesis | en_US |
thesis.degree.discipline | Electrical and Electronic Engineering | |
thesis.degree.grantor | Bilkent University | |
thesis.degree.level | Doctoral | |
thesis.degree.name | Ph.D. (Doctor of Philosophy) |
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