Person: Gopalakrishnan, Sarang
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Publication Quantum Quasicrystals of Spin-Orbit-Coupled Dipolar Bosons
(American Physical Society (APS), 2013) Gopalakrishnan, Sarang; Martin, Ivar; Demler, EugeneWe study quasi-two-dimensional dipolar Bose gases in which the bosons experience a Rashba spin-orbit coupling. We show that the degenerate dispersion minimum due to the spin-orbit coupling, combined with the long-range dipolar interaction, can stabilize a number of quantum crystalline and quasicrystalline ground states. Coupling the bosons to a fermionic species can further stabilize these phases. We estimate that the crystalline and quasicrystalline phases should be detectable in realistic dipolar condensates, e.g., dysprosium, and discuss their symmetries and excitations.
Publication Unconventional Magnetism via Optical Pumping of Interacting Spin Systems
(American Physical Society, 2013) Lee, Tony; Gopalakrishnan, Sarang; Lukin, MikhailWe consider strongly interacting systems of effective spins, subject to dissipative spin-flip processes associated with optical pumping. We predict the existence of novel magnetic phases in the steady state of this system, which emerge due to the competition between coherent and dissipative processes. Specifically, for strongly anisotropic spin-spin interactions, we find ferromagnetic, antiferromagnetic, spin-density-wave, and staggered-(XY) steady states, which are separated by nonequilibrium phase transitions meeting at a Lifshitz point. These transitions are accompanied by quantum correlations, resulting in spin squeezing. Experimental implementations in ultracold atoms and trapped ions are discussed.
Publication Many-Body Localization in Dipolar Systems
(American Physical Society (APS), 2014) Yao, Norman; Laumann, C. R.; Gopalakrishnan, Sarang; Knap, Michael; Müller, M.; Demler, Eugene; Lukin, MikhailSystems of strongly interacting dipoles offer an attractive platform to study many-body localized phases, owing to their long coherence times and strong interactions. We explore conditions under which such localized phases persist in the presence of power-law interactions and supplement our analytic treatment with numerical evidence of localized states in one dimension. We propose and analyze several experimental systems that can be used to observe and probe such states, including ultracold polar molecules and solid-state magnetic spin impurities.
Publication Interferometric Probes of Many-Body Localization
(American Physical Society (APS), 2014) Serbyn, M.; Knap, Michael; Gopalakrishnan, Sarang; Papić, Z.; Yao, Norman; Laumann, C. R.; Abanin, Dmitry; Lukin, Mikhail; Demler, EugeneWe propose a method for detecting many-body localization (MBL) in disordered spin systems. The method involves pulsed coherent spin manipulations that probe the dephasing of a given spin due to its entanglement with a set of distant spins. It allows one to distinguish the MBL phase from a noninteracting localized phase and a delocalized phase. In particular, we show that for a properly chosen pulse sequence the MBL phase exhibits a characteristic power-law decay reflecting its slow growth of entanglement. We find that this power-law decay is robust with respect to thermal and disorder averaging, provide numerical simulations supporting our results, and discuss possible experimental realizations in solid-state and cold-atom systems.