Quantum Nonlinear Optics in Nanoscale Waveguides
Hashem Zoubi
Holon Institute of Technology
Dr Hashem Zoubi.
Assistant Professor.
Department of Physics.
Holon Institute of Technology, Holon-Israel.
Subject: Quantum Phenomena of Light-Matter Interactions.
PHD (2003), Technion -- Israel Institute of Technology.
Privatdozent (Habilitation) 2014, Innsbruck University.
Post Doc (2003-2006) Schoula Normale Superiore di Pisa, Italy, (EU Fellowship).
Post Doc (2007-2008) Innsbruck University, Austria (Lise-Meitner Fellowship).
Independent Researcher (2009-2012) Innsbruck University (FWF Grant).
Visitor Scientist (2013-1014) Max-Planck Institute for the Physics of Complex Systems, Dresden-Germany (Research Grant).
Senior Scientist (2015-2017) Leibniz University Hanover and Albert Einstein Institute, Hanover-Germany.
Senior Lecturer (Assistant Professor) (2017-) Holon Institute of Technology, Holon Israel.
Abstract
We develop a systematic method for deriving quantum optical multi-mode Hamiltonian for the interaction of photons and phonons in nanophotonic dielectric materials by applying perturbation theory to the electromagnetic... [ view full abstract ]
We develop a systematic method for deriving quantum optical multi-mode Hamiltonian for the interaction of photons and phonons in nanophotonic dielectric materials by applying perturbation theory to the electromagnetic Hamiltonian [1]. The Hamiltonian covers radiation pressure and electrostrictive interactions on equal footing. As a paradigmatic example, we apply our method to a cylindrical nanoscale waveguide, and derive a Hamiltonian description of Brillouin quantum optomechanics. We show analytically that in nanoscale waveguides radiation pressure dominates over electrostriction, in agreement with recent experiments [2, 3]. We explore the possibility of achieving a significant nonlinear phase shift among photons propagating in nanoscale waveguides exploiting interactions among photons that are mediated by vibrational modes and induced through Stimulated Brillouin Scattering (SBS) [4]. We introduce a configuration that allows slowing down the photons by several orders of magnitude via SBS involving sound waves and two pump fields. We extract the conditions for maintaining vanishing amplitude gain or loss for slowly propagating photons while keeping the influence of thermal phonons to the minimum. The nonlinear phase among two counter-propagating photons can be used to realize a deterministic phase gate.
[1] H. Zoubi, K. Hammerer, Phys. Rev. A 94, 053827 (2016).
[2] R. Van Laer, et al., Nature Phot. 9, 199 (2015).
[3] E. K. Kittlaus, et al., Nature Phot. 10, 463 (2016).
[4] H. Zoubi, K. Hammerer, Phys. Rev. Lett. 119, 123602 (2017).
Authors
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Hashem Zoubi
(Holon Institute of Technology)
Topic Areas
Nonlinear nano-optics , Nano-Optomechanics , Quantum nano-optics
Session
OS2b-1 » Quantum nano-optics (16:50 - Tuesday, 2nd October, ROOM 1)
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