Quantum Nonlinear Dynamics and Chaos in Photonic and Nano Systems

abstract: This dissertation aims to study and understand the effect of nonlinear dynamics and quantum chaos in graphene, optomechanics, photonics and spintronics systems. First, in graphene quantum dot systems, conductance fluctuations are investigated from the respects of Fano resonances and quant...

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Other Authors: Wang, Guanglei (Author)
Format: Doctoral Thesis
Language:English
Published: 2017
Subjects:
Online Access:http://hdl.handle.net/2286/R.I.44131
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spelling ndltd-asu.edu-item-441312018-06-22T03:08:23Z Quantum Nonlinear Dynamics and Chaos in Photonic and Nano Systems abstract: This dissertation aims to study and understand the effect of nonlinear dynamics and quantum chaos in graphene, optomechanics, photonics and spintronics systems. First, in graphene quantum dot systems, conductance fluctuations are investigated from the respects of Fano resonances and quantum chaos. The conventional semi-classical theory of quantum chaotic scattering used in this field depends on an invariant classical phase-space structure. I show that for systems without an invariant classical phase-space structure, the quantum pointer states can still be used to explain the conductance fluctuations. Another finding is that the chaotic geometry is demonstrated to have similar effects as the disorders in transportations. Second, in optomechanics systems, I find rich nonlinear dynamics. Using the semi-classical Langevin equations, I demonstrate a quasi-periodic motion is favorable for the quantum entanglement between the optical mode and mechanical mode. Then I use the quantum trajectory theory to provide a new resolution for the breakdown of the classical-quantum correspondences in the chaotic regions. Third, I investigate the analogs of the electrical band structures and effects in the non-electrical systems. In the photonic systems, I use an array of waveguides to simulate the transport of the massive relativistic particle in a non-Hermitian scenario. A new form of Zitterbewegung is discovered as well as its analytical explanation. In mechanical systems, I use springs and mass points systems to achieve a three band degenerate band structure with a new pair of spatially separated edge states in the Dice lattice. A new semi-metal phase with the intrinsic valley-Hall effect is found. At last, I investigate the nonlinear dynamics in the spintronics systems, in which the topological insulator couples with a magnetization. Rich nonlinear dynamics are discovered in this systems, especially the multi-stability states. Dissertation/Thesis Wang, Guanglei (Author) Lai, Ying-Cheng (Advisor) Vasileska, Dragica (Committee member) Ning, Cun-Zheng (Committee member) Zhao, Yuji (Committee member) Arizona State University (Publisher) Electrical engineering Physics eng 216 pages Doctoral Dissertation Electrical Engineering 2017 Doctoral Dissertation http://hdl.handle.net/2286/R.I.44131 http://rightsstatements.org/vocab/InC/1.0/ All Rights Reserved 2017
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic Electrical engineering
Physics
spellingShingle Electrical engineering
Physics
Quantum Nonlinear Dynamics and Chaos in Photonic and Nano Systems
description abstract: This dissertation aims to study and understand the effect of nonlinear dynamics and quantum chaos in graphene, optomechanics, photonics and spintronics systems. First, in graphene quantum dot systems, conductance fluctuations are investigated from the respects of Fano resonances and quantum chaos. The conventional semi-classical theory of quantum chaotic scattering used in this field depends on an invariant classical phase-space structure. I show that for systems without an invariant classical phase-space structure, the quantum pointer states can still be used to explain the conductance fluctuations. Another finding is that the chaotic geometry is demonstrated to have similar effects as the disorders in transportations. Second, in optomechanics systems, I find rich nonlinear dynamics. Using the semi-classical Langevin equations, I demonstrate a quasi-periodic motion is favorable for the quantum entanglement between the optical mode and mechanical mode. Then I use the quantum trajectory theory to provide a new resolution for the breakdown of the classical-quantum correspondences in the chaotic regions. Third, I investigate the analogs of the electrical band structures and effects in the non-electrical systems. In the photonic systems, I use an array of waveguides to simulate the transport of the massive relativistic particle in a non-Hermitian scenario. A new form of Zitterbewegung is discovered as well as its analytical explanation. In mechanical systems, I use springs and mass points systems to achieve a three band degenerate band structure with a new pair of spatially separated edge states in the Dice lattice. A new semi-metal phase with the intrinsic valley-Hall effect is found. At last, I investigate the nonlinear dynamics in the spintronics systems, in which the topological insulator couples with a magnetization. Rich nonlinear dynamics are discovered in this systems, especially the multi-stability states. === Dissertation/Thesis === Doctoral Dissertation Electrical Engineering 2017
author2 Wang, Guanglei (Author)
author_facet Wang, Guanglei (Author)
title Quantum Nonlinear Dynamics and Chaos in Photonic and Nano Systems
title_short Quantum Nonlinear Dynamics and Chaos in Photonic and Nano Systems
title_full Quantum Nonlinear Dynamics and Chaos in Photonic and Nano Systems
title_fullStr Quantum Nonlinear Dynamics and Chaos in Photonic and Nano Systems
title_full_unstemmed Quantum Nonlinear Dynamics and Chaos in Photonic and Nano Systems
title_sort quantum nonlinear dynamics and chaos in photonic and nano systems
publishDate 2017
url http://hdl.handle.net/2286/R.I.44131
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