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Lukin, Mikhail

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Lukin

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Mikhail

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Lukin, Mikhail

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Now showing 1 - 4 of 4
  • Publication

    Robust Optical Delay Lines with Topological Protection

    (Nature Publishing Group, 2011) Hafezi, Mohammad; Demler, Eugene; Lukin, Mikhail; Taylor, Jacob

    Phenomena associated with the topological properties of physical systems can be naturally robust against perturbations. This robustness is exemplified by quantized conductance and edge state transport in the quantum Hall and quantum spin Hall effects. Here we show how exploiting topological properties of optical systems can be used to improve photonic devices. We demonstrate how quantum spin Hall Hamiltonians can be created with linear optical elements using a network of coupled resonator optical waveguides (CROW) in two dimensions. We find that key features of quantum Hall systems, including the characteristic Hofstadter butterfly and robust edge state transport, can be obtained in such systems. As a specific application, we show that topological protection can be used to improve the performance of optical delay lines and to overcome some limitations related to disorder in photonic technologies.

  • Publication

    Nuclear Spin Cooling Using Overhauser-Field Selective Coherent Population Trapping

    (American Physical Society, 2010) Issler, Mena; Kessler, Eric M.; Giedke, Geza; Yelin, Susanne; Cirac, Ignacio; Lukin, Mikhail; Imamoglu, Atac

    We show that a quantum interference effect in optical absorption from two electronic spin states of a solid-state emitter can be used to prepare the surrounding environment of nuclear spins in well-defined states, thereby suppressing electronic spin dephasing. The coupled electron-nuclei system evolves into a coherent population trapping state by optical-excitation-induced nuclear-spin diffusion for a broad range of initial optical detunings. The spectroscopic signature of this evolution where the single-electron strongly modifies its environment is a drastic broadening of the dark resonance in optical absorption experiments. The large difference in electronic and nuclear time scales allows us to verify the preparation of nuclear spins in the desired state.

  • Publication

    Characterization of Topological States on a Lattice with Chern Number

    (Institute of Physics, 2008) Hafezi, Mohammad; Sørensen, Anders; Lukin, Mikhail; Demler, Eugene

    We study Chern numbers to characterize the ground state of strongly interacting systems on a lattice. This method allows us to perform a numerical characterization of bosonic fractional quantum Hall (FQH) states on a lattice where the conventional overlap calculation with the known continuum case such as the Laughlin state, breaks down due to the lattice structure or dipole-dipole interaction. The non-vanishing Chern number indicates the existence of a topological order in the degenerate ground-state manifold.

  • 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.