Phase Transitions in Dipole-Dipole Interacting Atomic Systems

Phase transitions are generally a many-body phenomenon, and in order to access the full range of interesting physics of phase transitions, one needs interactions between the microscopic constituents. In this thesis, the phase transitions of atomic systems with interparticle dipole-dipole interaction...

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Main Author: Wang, Qingyang
Other Authors: Yelin, Susanne
Format: Thesis
Published: Massachusetts Institute of Technology 2022
Online Access:https://hdl.handle.net/1721.1/143289
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author Wang, Qingyang
author2 Yelin, Susanne
author_facet Yelin, Susanne
Wang, Qingyang
author_sort Wang, Qingyang
collection MIT
description Phase transitions are generally a many-body phenomenon, and in order to access the full range of interesting physics of phase transitions, one needs interactions between the microscopic constituents. In this thesis, the phase transitions of atomic systems with interparticle dipole-dipole interaction controlled by laser fields are studied. In the first half of the thesis, a system with externally polarized dipole molecules at half-filling moving along a one-dimensional zigzag chain is studied, including groundstate phase diagrams. The dipoles are oriented in-plane. Together with the geometry of the chain, this gives rise to a bond-alternating nearest-neighbor interaction due to simultaneous attractive and repulsive interactions. By tuning the ratio between the nearest-neighbor interaction and hopping, various phases can be accessed by controlling the polarization angle. In the ultrastrong coupling limit, the system simplifies to a frustrated extended axial Ising model. For the small coupling limit, a qualitative discussion of the ordering behavior using effective field theory arguments is provided. We show that when the chain angle is small, the system mostly exhibits a phase transition from the gappless phase into the gapped phase, whereas a large chain angle would drive the system into a dimerized phase, where the hopping strength is closely related to the orientation of the dimerized pairs of the molecules. In the latter part of the thesis, the interatomic correlations of a semiclassical driven dissipative Dicke model are studied. By numerically examining the genuine multiparticle entanglement of the reduced systems of various particle numbers, we show that the entanglement is built up at the transition point, even when the system makes transitions into a highly mixed state. This suggests that the phase transition is of quantum nature. Additionally, the quantum discord of the system is computed. By the use of the full permutation invariance of the system, we show that the numerical complexity in computing quantum discord is significantly reduced. The result indicates that when the dissipation becomes dominant, the system is not entangled but possesses large quantum discord.
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spelling mit-1721.1/1432892022-06-16T03:59:31Z Phase Transitions in Dipole-Dipole Interacting Atomic Systems Wang, Qingyang Yelin, Susanne Vultić, Vladan Massachusetts Institute of Technology. Department of Physics Phase transitions are generally a many-body phenomenon, and in order to access the full range of interesting physics of phase transitions, one needs interactions between the microscopic constituents. In this thesis, the phase transitions of atomic systems with interparticle dipole-dipole interaction controlled by laser fields are studied. In the first half of the thesis, a system with externally polarized dipole molecules at half-filling moving along a one-dimensional zigzag chain is studied, including groundstate phase diagrams. The dipoles are oriented in-plane. Together with the geometry of the chain, this gives rise to a bond-alternating nearest-neighbor interaction due to simultaneous attractive and repulsive interactions. By tuning the ratio between the nearest-neighbor interaction and hopping, various phases can be accessed by controlling the polarization angle. In the ultrastrong coupling limit, the system simplifies to a frustrated extended axial Ising model. For the small coupling limit, a qualitative discussion of the ordering behavior using effective field theory arguments is provided. We show that when the chain angle is small, the system mostly exhibits a phase transition from the gappless phase into the gapped phase, whereas a large chain angle would drive the system into a dimerized phase, where the hopping strength is closely related to the orientation of the dimerized pairs of the molecules. In the latter part of the thesis, the interatomic correlations of a semiclassical driven dissipative Dicke model are studied. By numerically examining the genuine multiparticle entanglement of the reduced systems of various particle numbers, we show that the entanglement is built up at the transition point, even when the system makes transitions into a highly mixed state. This suggests that the phase transition is of quantum nature. Additionally, the quantum discord of the system is computed. By the use of the full permutation invariance of the system, we show that the numerical complexity in computing quantum discord is significantly reduced. The result indicates that when the dissipation becomes dominant, the system is not entangled but possesses large quantum discord. Ph.D. 2022-06-15T13:10:03Z 2022-06-15T13:10:03Z 2022-02 2022-05-25T22:43:50.625Z Thesis https://hdl.handle.net/1721.1/143289 In Copyright - Educational Use Permitted Copyright MIT http://rightsstatements.org/page/InC-EDU/1.0/ application/pdf Massachusetts Institute of Technology
spellingShingle Wang, Qingyang
Phase Transitions in Dipole-Dipole Interacting Atomic Systems
title Phase Transitions in Dipole-Dipole Interacting Atomic Systems
title_full Phase Transitions in Dipole-Dipole Interacting Atomic Systems
title_fullStr Phase Transitions in Dipole-Dipole Interacting Atomic Systems
title_full_unstemmed Phase Transitions in Dipole-Dipole Interacting Atomic Systems
title_short Phase Transitions in Dipole-Dipole Interacting Atomic Systems
title_sort phase transitions in dipole dipole interacting atomic systems
url https://hdl.handle.net/1721.1/143289
work_keys_str_mv AT wangqingyang phasetransitionsindipoledipoleinteractingatomicsystems