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Gorshkov, Alexey

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Gorshkov

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Alexey

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Gorshkov, Alexey

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Now showing 1 - 10 of 17
  • Publication

    Scalable Architecture for a Room Temperature Solid-State Quantum Information Processor

    (Nature Publishing Group, 2012) Yao, Norman; Jiang, Liang; Gorshkov, Alexey; Maurer, Peter Christian; Giedke, Géza; Cirac, Ignacio; Lukin, Mikhail

    The realization of a scalable quantum information processor has emerged over the past decade as one of the central challenges at the interface of fundamental science and engineering. Here we propose and analyse an architecture for a scalable, solid-state quantum information processor capable of operating at room temperature. Our approach is based on recent experimental advances involving nitrogen-vacancy colour centres in diamond. In particular, we demonstrate that the multiple challenges associated with operation at ambient temperature, individual addressing at the nanoscale, strong qubit coupling, robustness against disorder and low decoherence rates can be simultaneously achieved under realistic, experimentally relevant conditions. The architecture uses a novel approach to quantum information transfer and includes a hierarchy of control at successive length scales. Moreover, it alleviates the stringent constraints currently limiting the realization of scalable quantum processors and will provide fundamental insights into the physics of non-equilibrium many-body quantum systems.

  • Publication

    Realization of Coherent Optically Dense Media via Buffer-Gas Cooling

    (American Physical Society, 2009) Hong, Tao; Gorshkov, Alexey; Patterson, David; Zibrov, Alexander; Doyle, John; Lukin, Mikhail; Prentiss, Mara

    We demonstrate that buffer-gas cooling combined with laser ablation can be used to create coherent optical media with high optical depth and low Doppler broadening that offers metastable states with low collisional and motional decoherence. Demonstration of this generic technique opens pathways to coherent optics with a large variety of atoms and molecules. We use helium buffer gas to cool (^{87}Rb) atoms to below (7 K) and slow atom diffusion to the walls. Electromagnetically induced transparency in this medium allows for (50%) transmission in a medium with initial optical depth (D>70) and for slow pulse propagation with large delay-bandwidth products. In the high-(D) regime, we observe high-contrast spectrum oscillations due to efficient four-wave mixing.

  • Publication

    Photon-Photon Interactions via Rydberg Blockade

    (American Physical Society, 2011) Gorshkov, Alexey; Otterbach, Johannes; Fleischhauer, Michael; Pohl, Thomas; Lukin, Mikhail

    We develop the theory of light propagation under the conditions of electromagnetically induced transparency in systems involving strongly interacting Rydberg states. Taking into account the quantum nature and the spatial propagation of light, we analyze interactions involving few-photon pulses. We show that this system can be used for the generation of nonclassical states of light including trains of single photons with an avoided volume between them, for implementing photon-photon gates, as well as for studying many-body phenomena with strongly correlated photons.

  • Publication

    Anyonic Interferometry and Protected Memories in Atomic Spin Lattices

    (Nature Publishing Group, 2008) Jiang, Liang; Brennen, Gavin; Gorshkov, Alexey; Hammerer, Klemens; Hafezi, Mohammad; Demler, Eugene; Luki, Mikhail; Zoller, Peter

    Strongly correlated quantum systems can exhibit exotic behavior called topological order which is characterized by non-local correlations that depend on the system topology. Such systems can exhibit remarkable phenomena such as quasi-particles with anyonic statistics and have been proposed as candidates for naturally fault-tolerant quantum computation. Despite these remarkable properties, anyons have never been observed in nature directly. Here we describe how to unambiguously detect and characterize such states in recently proposed spin lattice realizations using ultra-cold atoms or molecules trapped in an optical lattice. We propose an experimentally feasible technique to access non-local degrees of freedom by performing global operations on trapped spins mediated by an optical cavity mode. We show how to reliably read and write topologically protected quantum memory using an atomic or photonic qubit. Furthermore, our technique can be used to probe statistics and dynamics of anyonic excitations.

  • Publication

    Alkaline-Earth-Metal Atoms as Few-Qubit Quantum Registers

    (American Physical Society, 2009) Gorshkov, Alexey; Rey, Ana; Daley, Andrew; Boyd, Martin; Ye, Jun; Zoller, Peter; Lukin, Mikhail

    We propose and analyze a novel approach to quantum information processing, in which multiple qubits can be encoded and manipulated using electronic and nuclear degrees of freedom associated with individual alkaline-earth atoms trapped in an optical lattice. Specifically, we describe how the qubits within each register can be individually manipulated and measured with sub-wavelength optical resolution. We also show how such few-qubit registers can be coupled to each other in optical superlattices via conditional tunneling to form a scalable quantum network. Finally, potential applications to quantum computation and precision measurements are discussed.

  • Publication

    Coherent Quantum Optical Control with Subwavelength Resolution

    (American Physical Society, 2008) Gorshkov, Alexey; Jiang, Liang; Greiner, Markus; Zoller, Peter; Lukin, Mikhail

    We suggest a new method for quantum optical control with nanoscale resolution. Our method allows for coherent far-field manipulation of individual quantum systems with spatial selectivity that is not limited by the wavelength of radiation and can, in principle, approach a few nanometers. The selectivity is enabled by the nonlinear atomic response, under the conditions of electromagnetically induced transparency, to a control beam with intensity vanishing at a certain location. Practical performance of this technique and its potential applications to quantum information science with cold atoms, ions, and solid-state qubits are discussed.

  • Publication

    Photonic Phase Gate via an Exchange of Fermionic Spin Waves in a Spin Chain

    (American Physical Society, 2010) Gorshkov, Alexey; Otterbach, Johannes; Demler, Eugene; Fleischhauer, Michael; Lukin, Mikhail

    We propose a new protocol for implementing the two-qubit photonic phase gate. In our approach, the pi phase is acquired by mapping two single photons into atomic excitations with fermionic character and exchanging their positions. The fermionic excitations are realized as spin waves in a spin chain, while photon storage techniques provide the interface between the photons and the spin waves. Possible imperfections and experimental systems suitable for implementing the gate are discussed.

  • Publication

    Photon Storage in Lambda-type Optically Dense Atomic Media. IV. Optimal Control Using Gradient Ascent

    (American Physical Society, 2008) Gorshkov, Alexey; Calarco, Tommaso; Lukin, Mikhail; Sorensen, Anders

    We use the numerical gradient ascent method from optimal control theory to extend efficient photon storage in Lambda-type media to previously inaccessible regimes and to provide simple intuitive explanations for our optimization techniques. In particular, by using gradient ascent to shape classical control pulses used to mediate photon storage, we open up the possibility of high efficiency photon storage in the non-adiabatic limit, in which analytical solutions to the equations of motion do not exist. This control shaping technique enables an order-of-magnitude increase in the bandwidth of the memory. We also demonstrate that the often discussed connection between time reversal and optimality in photon storage follows naturally from gradient ascent. Finally, we discuss the optimization of controlled reversible inhomogeneous broadening.

  • Publication

    Robust Quantum State Transfer in Random Unpolarized Spin Chains

    (American Physical Society, 2011) Yao, Norman; Jiang, Liang; Gorshkov, Alexey; Gong, Zhe-Xuan; Zhai, Alex; Duan, Luming; Lukin, Mikhail

    We propose and analyze a new approach for quantum state transfer between remote spin qubits. Specifically, we demonstrate that coherent quantum coupling between remote qubits can be achieved via certain classes of random, unpolarized (infinite temperature) spin chains. Our method is robust to coupling-strength disorder and does not require manipulation or control over individual spins. In principle, it can be used to attain perfect state transfer over an arbitrarily long range via purely Hamiltonian evolution and may be particularly applicable in a solid-state quantum information processor. As an example, we demonstrate that it can be used to attain strong coherent coupling between nitrogen-vacancy centers separated by micrometer distances at room temperature. Realistic imperfections and decoherence effects are analyzed.

  • Publication

    Quantum Magnetism with Polar Alkali-Metal Dimers

    (American Physical Society, 2011) Gorshkov, Alexey; Manmana, Salvatore; Chen, Gang; Demler, Eugene; Lukin, Mikhail; Rey, Ana

    We show that dipolar interactions between ultracold polar alkali dimers in optical lattices can be used to realize a highly tunable generalization of the (t-J) model, which we refer to as the (t-J-V-W) model. The model features long-range spin-spin interactions (J_z) and (J_{\perp}) of (XXZ) type, long-range density-density interaction (V), and long-range density-spin interaction W, all of which can be controlled in both magnitude and sign independently of each other and of the tunneling (t). The "spin" is encoded in the rotational degree of freedom of the molecules, while the interactions are controlled by applied static electric and continuous-wave microwave fields. Furthermore, we show that nuclear spins of the molecules can be used to implement an additional (orbital) degree of freedom that is coupled to the original rotational degree of freedom in a tunable way. The presented system is expected to exhibit exotic physics and to provide insights into strongly correlated phenomena in condensed matter systems. Realistic experimental imperfections are discussed.