An integrated nanoaperture optical-fiber tweezer for developing single-photon sources

In this thesis, an approach for developing single-photon sources at the 1550nm wavelength will be demonstrated, based on optical trapping of luminescent upconverting nanoparticles. A single-photon source is a source that emits a single photon at a time, and hence it is a source of quantum bits that...

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Main Author: Ehtaiba, Jamal Mehemed
Other Authors: Gordon, Reuven
Format: Others
Language:English
en
Published: 2020
Subjects:
WDM
Online Access:http://hdl.handle.net/1828/11718
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spelling ndltd-uvic.ca-oai-dspace.library.uvic.ca-1828-117182020-05-05T15:41:56Z An integrated nanoaperture optical-fiber tweezer for developing single-photon sources Ehtaiba, Jamal Mehemed Gordon, Reuven UCNPs Optical Trapping Optical Tweezer Optical Fiber Single Photon Second Coherence Antibuched Light Nanoantenna WDM In this thesis, an approach for developing single-photon sources at the 1550nm wavelength will be demonstrated, based on optical trapping of luminescent upconverting nanoparticles. A single-photon source is a source that emits a single photon at a time, and hence it is a source of quantum bits that constitutes the basic building units in quantum computers and quantum communications. The approach exploits the plasmonic properties of gold films and the waveguiding characteristics of single mode optical fibers (SMFs). We start by planar nanofabrication of subwavelength nanoapertures in a thin gold film based on finite difference time domain simulations for a peak transmission at the wavelength in question. Subsequently, using ultraviolet curable epoxy adhesion material, a nanoaperture patterned on a gold film can be transferred to an SMF tip forming a nanoantenna enhanced optical fiber tweezer (NAFT). As a final step in building the optical tweezer, a test of the capability of the integrated optical fiber tweezer to trap 20 nm, and 30nm polystyrene nanospheres, as well as luminescent upconverting nanoparticles (UCNPs), has been experimentally realized with encouraging results. In addition to the optical trapping of the luminescent nanoparticles, the nano aperture antenna can improve light coupling into the low loss optical fiber guiding channel. Also, it could have a positive influence on enhancing the photon emission rate through the Purcell effect. Furthermore, we have combined NAFT with a low insertion loss wave splitter, a wavelength-division multiplexer (WDM), to allow measuring the 1550nm photon-emission statistics on a cooled superconducting nanowire single-photon detector (SNSPD) at ~ 2.4o K. Eventually, nanoantenna enhanced optical fiber tweezers can play an essential role in optical trapping towards developing single-photon sources and the emerging technology of quantum information processing, computation, and cryptography. Graduate 2020-05-04T22:46:26Z 2020-05-04T22:46:26Z 2020 2020-05-04 Thesis http://hdl.handle.net/1828/11718 1. Ehtaiba, Jamal M., and Reuven Gordon. "Template-stripped nanoaperture tweezer integrated with optical fiber." Optics Express 26.8 (2018): 9607-9613. 2. Ehtaiba, Jamal M., and Reuven Gordon. "Integrated nanoaperture optical fiber tweezer." Optical Trapping and Optical Micromanipulation XV. Vol. 10723. International Society for Optics and Photonics, 2018. 3. Ehtaiba, Jamal M., and Reuven Gordon. "Beaming light through a bow-tie nanoaperture at the tip of a single-mode optical fiber." Optics Express 27.10 (2019): 14112-14120. English en Available to the World Wide Web application/pdf
collection NDLTD
language English
en
format Others
sources NDLTD
topic UCNPs
Optical Trapping
Optical Tweezer
Optical Fiber
Single Photon
Second Coherence
Antibuched Light
Nanoantenna
WDM
spellingShingle UCNPs
Optical Trapping
Optical Tweezer
Optical Fiber
Single Photon
Second Coherence
Antibuched Light
Nanoantenna
WDM
Ehtaiba, Jamal Mehemed
An integrated nanoaperture optical-fiber tweezer for developing single-photon sources
description In this thesis, an approach for developing single-photon sources at the 1550nm wavelength will be demonstrated, based on optical trapping of luminescent upconverting nanoparticles. A single-photon source is a source that emits a single photon at a time, and hence it is a source of quantum bits that constitutes the basic building units in quantum computers and quantum communications. The approach exploits the plasmonic properties of gold films and the waveguiding characteristics of single mode optical fibers (SMFs). We start by planar nanofabrication of subwavelength nanoapertures in a thin gold film based on finite difference time domain simulations for a peak transmission at the wavelength in question. Subsequently, using ultraviolet curable epoxy adhesion material, a nanoaperture patterned on a gold film can be transferred to an SMF tip forming a nanoantenna enhanced optical fiber tweezer (NAFT). As a final step in building the optical tweezer, a test of the capability of the integrated optical fiber tweezer to trap 20 nm, and 30nm polystyrene nanospheres, as well as luminescent upconverting nanoparticles (UCNPs), has been experimentally realized with encouraging results. In addition to the optical trapping of the luminescent nanoparticles, the nano aperture antenna can improve light coupling into the low loss optical fiber guiding channel. Also, it could have a positive influence on enhancing the photon emission rate through the Purcell effect. Furthermore, we have combined NAFT with a low insertion loss wave splitter, a wavelength-division multiplexer (WDM), to allow measuring the 1550nm photon-emission statistics on a cooled superconducting nanowire single-photon detector (SNSPD) at ~ 2.4o K. Eventually, nanoantenna enhanced optical fiber tweezers can play an essential role in optical trapping towards developing single-photon sources and the emerging technology of quantum information processing, computation, and cryptography. === Graduate
author2 Gordon, Reuven
author_facet Gordon, Reuven
Ehtaiba, Jamal Mehemed
author Ehtaiba, Jamal Mehemed
author_sort Ehtaiba, Jamal Mehemed
title An integrated nanoaperture optical-fiber tweezer for developing single-photon sources
title_short An integrated nanoaperture optical-fiber tweezer for developing single-photon sources
title_full An integrated nanoaperture optical-fiber tweezer for developing single-photon sources
title_fullStr An integrated nanoaperture optical-fiber tweezer for developing single-photon sources
title_full_unstemmed An integrated nanoaperture optical-fiber tweezer for developing single-photon sources
title_sort integrated nanoaperture optical-fiber tweezer for developing single-photon sources
publishDate 2020
url http://hdl.handle.net/1828/11718
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