Person: Gullans, Michael John
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Publication Dynamic Nuclear Polarization in Double Quantum Dots
(American Physical Society, 2010) Gullans, Michael John; Krich, Jacob Jonathan; Taylor, Jacob; Bluhm, Hendrik; Halperin, Bertrand; Marcus, C; Stopa, Michael P; Yacoby, Amir; Lukin, MikhailWe theoretically investigate the controlled dynamic polarization of lattice nuclear spins in GaAs double quantum dots containing two electrons. Three regimes of long-term dynamics are identified, including the buildup of a large difference in the Overhauser fields across the dots, the saturation of the nuclear polarization process associated with formation of so-called ‘‘dark states’’, and the elimination of the difference field. We show that in the case of unequal dots, buildup of difference fields generally accompanies the nuclear polarization process, whereas for nearly identical dots, buildup of difference fields competes with polarization saturation in dark states. The elimination of the difference field does not, in general, correspond to a stable steady state of the polarization process.
Publication Adiabatic Preparation of Many-Body States in Optical Lattices
(American Physical Society, 2010) Sorensen, Anders; Altman, Ehud; Gullans, Michael John; Porto, J.; Lukin, Mikhail; Demler, EugeneWe analyze a technique for the preparation of low-entropy many-body states of atoms in optical lattices based on adiabatic passage. In particular, we show that this method allows preparation of strongly correlated states as stable highest energy states of Hamiltonians that have trivial ground states. As an example, we analyze the generation of antiferromagnetically ordered states by adiabatic change of a staggered field acting on the spins of bosonic atoms with ferromagnetic interactions.
Publication Coupling a Single Trapped Atom to a Nanoscale Optical Cavity
(American Association for the Advancement of Science (AAAS), 2013) Thompson, Jeffrey Douglas; Tiecke, Tobias; de Leon, Nathalie Pulmones; Feist, J.; Akimov, Alexey; Gullans, Michael John; Zibrov, Alexander; Vuletic, V.; Lukin, MikhailHybrid quantum devices, in which dissimilar quantum systems are combined in order to attain qualities not available with either system alone, may enable far-reaching control in quantum measurement, sensing, and information processing. A paradigmatic example is trapped ultracold atoms, which offer excellent quantum coherent properties, coupled to nanoscale solid-state systems, which allow for strong interactions. We demonstrate a deterministic interface between a single trapped rubidium atom and a nanoscale photonic crystal cavity. Precise control over the atom's position allows us to probe the cavity near-field with a resolution below the diffraction limit and to observe large atom-photon coupling. This approach may enable the realization of integrated, strongly coupled quantum nano-optical circuits.
Publication All-Optical Switch and Transistor Gated by One Stored Photon
(American Association for the Advancement of Science (AAAS), 2013) Chen, Wenlan; Beck, Kristin M.; Bucker, Robert; Gullans, Michael John; Lukin, Mikhail; Tanji-Suzuki, Haruka; Vuletic, VladanThe realization of an all-optical transistor, in which one “gate” photon controls a “source” light beam, is a long-standing goal in optics. By stopping a light pulse in an atomic ensemble contained inside an optical resonator, we realized a device in which one stored gate photon controls the resonator transmission of subsequently applied source photons. A weak gate pulse induces bimodal transmission distribution, corresponding to zero and one gate photons. One stored gate photon produces fivefold source attenuation and can be retrieved from the atomic ensemble after switching more than one source photon. Without retrieval, one stored gate photon can switch several hundred source photons. With improved storage and retrieval efficiency, our work may enable various new applications, including photonic quantum gates and deterministic multiphoton entanglement.
Publication Controlling Atomic, Solid-State and Hybrid Systems for Quantum Information Processing
(2013-10-18) Gullans, Michael John; Lukin, Mikhail D.; Halperin, Bertrand; Vuletic, VladanQuantum information science involves the use of precise control over quantum systems to explore new technologies. However, as quantum systems are scaled up they require an ever deeper understanding of many-body physics to achieve the required degree of control. Current experiments are entering a regime which requires active control of a mesoscopic number of coupled quantum systems or quantum bits (qubits). This thesis describes several approaches to this goal and shows how mesoscopic quantum systems can be controlled and utilized for quantum information tasks.
Publication Single-Photon Nonlinear Optics with Graphene Plasmons
(American Physical Society (APS), 2013) Gullans, Michael John; Chang, D. E.; Koppens, F. H. L.; de Abajo, F. J. García; Lukin, MikhailWe show that it is possible to realize significant nonlinear optical interactions at the few photon level in graphene nanostructures. Our approach takes advantage of the electric field enhancement associated with the strong confinement of graphene plasmons and the large intrinsic nonlinearity of graphene. Such a system could provide a powerful platform for quantum nonlinear optical control of light. As an example, we consider an integrated optical device that exploits this large nonlinearity to realize a single photon switch.