Double-nanohole optical trapping: fabrication and experimental methods

Arthur Ashkin's Nobel Prize-winning single-beam gradient force optical tweezers have revolutionized research in many fields of science. The invention has enabled various atomic and single molecular studies, proving to be an essential tool for observing and understanding nature at the nanoscale....

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Main Author: Lalitha Ravindranath, Adarsh
Other Authors: Gordon, Reuven
Format: Others
Language:English
en
Published: 2019
Subjects:
Online Access:http://hdl.handle.net/1828/11087
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spelling ndltd-uvic.ca-oai-dspace.library.uvic.ca-1828-110872019-08-30T16:58:48Z Double-nanohole optical trapping: fabrication and experimental methods Lalitha Ravindranath, Adarsh Gordon, Reuven Optical Trapping Nanoplasmonics Double-nanohole Optical Tweezers Ashkin Colloidal Lithography Arthur Ashkin's Nobel Prize-winning single-beam gradient force optical tweezers have revolutionized research in many fields of science. The invention has enabled various atomic and single molecular studies, proving to be an essential tool for observing and understanding nature at the nanoscale. This thesis showcases the uniqueness of single-beam gradient force traps and the advances necessary to overcome the limitations inherent in conventional techniques of optical trapping. With decreasing particle sizes, the power required for a stable trap increases and could potentially damage a particle. This is a significant limitation for studying biomolecules using conventional optical traps. Plasmonic nanoaperture optical trapping using double-nanohole apertures is introduced as a solution to overcoming these limitations. Achievements in double-nanohole optical trapping made possible by the pioneering work of Gordon et. al are highlighted as well. This thesis focuses on the advances in nanoaperture fabrication methods and improvements to experimental techniques adopted in single molecular optical trapping studies. The technique of colloidal lithography is discussed as a cost-effective high-throughput alternative method for nanofabrication. The limitation in using this technique for producing double-nanohole apertures with feature sizes essential for optical trapping is analyzed. Improvements to enable tuning of aperture diameter and cusp separation is one of the main achievements of the work detailed in this thesis. Furthermore, the thesis explains the modified fabrication process tailor-made for designing double-nanohole apertures optimized for optical trapping. Transmission characterization of various apertures fabricated using colloidal lithography is carried out experimentally and estimated by computational electrodynamics simulations using the finite-difference time-domain (FDTD) method. Optical trapping with double-nanohole apertures fabricated using colloidal lithography is demonstrated with distinct results revealing trapping of a single polystyrene molecule, a rubisco enzyme and a bovine serum albumin (BSA) protein. Graduate 2019-08-29T19:34:00Z 2019-08-29T19:34:00Z 2019 2019-08-29 Thesis http://hdl.handle.net/1828/11087 English en Available to the World Wide Web application/pdf
collection NDLTD
language English
en
format Others
sources NDLTD
topic Optical Trapping
Nanoplasmonics
Double-nanohole
Optical Tweezers
Ashkin
Colloidal Lithography
spellingShingle Optical Trapping
Nanoplasmonics
Double-nanohole
Optical Tweezers
Ashkin
Colloidal Lithography
Lalitha Ravindranath, Adarsh
Double-nanohole optical trapping: fabrication and experimental methods
description Arthur Ashkin's Nobel Prize-winning single-beam gradient force optical tweezers have revolutionized research in many fields of science. The invention has enabled various atomic and single molecular studies, proving to be an essential tool for observing and understanding nature at the nanoscale. This thesis showcases the uniqueness of single-beam gradient force traps and the advances necessary to overcome the limitations inherent in conventional techniques of optical trapping. With decreasing particle sizes, the power required for a stable trap increases and could potentially damage a particle. This is a significant limitation for studying biomolecules using conventional optical traps. Plasmonic nanoaperture optical trapping using double-nanohole apertures is introduced as a solution to overcoming these limitations. Achievements in double-nanohole optical trapping made possible by the pioneering work of Gordon et. al are highlighted as well. This thesis focuses on the advances in nanoaperture fabrication methods and improvements to experimental techniques adopted in single molecular optical trapping studies. The technique of colloidal lithography is discussed as a cost-effective high-throughput alternative method for nanofabrication. The limitation in using this technique for producing double-nanohole apertures with feature sizes essential for optical trapping is analyzed. Improvements to enable tuning of aperture diameter and cusp separation is one of the main achievements of the work detailed in this thesis. Furthermore, the thesis explains the modified fabrication process tailor-made for designing double-nanohole apertures optimized for optical trapping. Transmission characterization of various apertures fabricated using colloidal lithography is carried out experimentally and estimated by computational electrodynamics simulations using the finite-difference time-domain (FDTD) method. Optical trapping with double-nanohole apertures fabricated using colloidal lithography is demonstrated with distinct results revealing trapping of a single polystyrene molecule, a rubisco enzyme and a bovine serum albumin (BSA) protein. === Graduate
author2 Gordon, Reuven
author_facet Gordon, Reuven
Lalitha Ravindranath, Adarsh
author Lalitha Ravindranath, Adarsh
author_sort Lalitha Ravindranath, Adarsh
title Double-nanohole optical trapping: fabrication and experimental methods
title_short Double-nanohole optical trapping: fabrication and experimental methods
title_full Double-nanohole optical trapping: fabrication and experimental methods
title_fullStr Double-nanohole optical trapping: fabrication and experimental methods
title_full_unstemmed Double-nanohole optical trapping: fabrication and experimental methods
title_sort double-nanohole optical trapping: fabrication and experimental methods
publishDate 2019
url http://hdl.handle.net/1828/11087
work_keys_str_mv AT lalitharavindranathadarsh doublenanoholeopticaltrappingfabricationandexperimentalmethods
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