171 research outputs found

    Dynamical matrix of two-dimensional electron crystals

    Full text link
    In a quantizing magnetic field, the two-dimensional electron (2DEG) gas has a rich phase diagram with broken translational symmetry phases such as Wigner, bubble, and stripe crystals. In this paper, we derive a method to get the dynamical matrix of these crystals from a calculation of the density response function performed in the Generalized Random Phase Approximation (GRPA). We discuss the validity of our method by comparing the dynamical matrix calculated from the GRPA with that obtained from standard elasticity theory with the elastic coefficients obtained from a calculation of the deformation energy of the crystal.Comment: Revised version published in Phys. Rev. B. 12 pages with 11 postscripts figure

    Phonon Networks with Silicon-Vacancy Centers in Diamond Waveguides

    Get PDF
    We propose and analyze a novel realization of a solid-state quantum network, where separated silicon-vacancy centers are coupled via the phonon modes of a quasi-one-dimensional diamond waveguide. In our approach, quantum states encoded in long-lived electronic spin states can be converted into propagating phonon wave packets and be reabsorbed efficiently by a distant defect center. Our analysis shows that under realistic conditions, this approach enables the implementation of high-fidelity, scalable quantum communication protocols within chip-scale spin-qubit networks. Apart from quantum information processing, this setup constitutes a novel waveguide QED platform, where strong-coupling effects between solid-state defects and individual propagating phonons can be explored at the quantum level

    Controlling the cold collision shift in high precision atomic interferometry

    Get PDF
    We present here a new method based on a transfer of population by adiabatic passage that allows to prepare cold atomic samples with a well defined ratio of atomic density and atom number. This method is used to perform a measurement of the cold collision frequency shift in a laser cooled cesium clock at the percent level, which makes the evaluation of the cesium fountains accuracy at the 10−1610^{-16} level realistic. With an improved set-up, the adiabatic passage would allow measurements of atom number-dependent phase shifts at the 10−310^{-3} level in high precision experiments.Comment: 4 pages, 3 figures, 2 table

    An Optical Lattice Clock with Spin-polarized 87Sr Atoms

    Full text link
    We present a new evaluation of an 87Sr optical lattice clock using spin polarized atoms. The frequency of the 1S0-3P0 clock transition is found to be 429 228 004 229 873.6 Hz with a fractional accuracy of 2.6 10^{-15}, a value that is comparable to the frequency difference between the various primary standards throughout the world. This measurement is in excellent agreement with a previous one of similar accuracy

    Very long storage times and evaporative cooling of cesium atoms in a quasi-electrostatic dipole trap

    Get PDF
    We have trapped cesium atoms over many minutes in the focus of a CO2_2-laser beam employing an extremely simple laser system. Collisional properties of the unpolarized atoms in their electronic ground state are investigated. Inelastic binary collisions changing the hyperfine state lead to trap loss which is quantitatively analyzed. Elastic collisions result in evaporative cooling of the trapped gas from 25 Ό\muK to 10 Ό\muK over a time scale of about 150 s.Comment: 5 pages, 3 figure

    Experimenting an optical second with strontium lattice clocks

    Full text link
    Progress in realizing the SI second had multiple technological impacts and enabled to further constraint theoretical models in fundamental physics. Caesium microwave fountains, realizing best the second according to its current definition with a relative uncertainty of 2-4x10^(-16), have already been superseded by atomic clocks referenced to an optical transition, both more stable and more accurate. Are we ready for a new definition of the second? Here we present an important step in this direction: our system of five clocks connects with an unprecedented consistency the optical and the microwave worlds. For the first time, two state-of-the-art strontium optical lattice clocks are proven to agree within their accuracy budget, with a total uncertainty of 1.6x10^(-16). Their comparison with three independent caesium fountains shows a degree of reproducibility henceforth solely limited at the level of 3.1x10^(-16) by the best realizations of the microwave-defined second.Comment: 9 pages, 4 figures, 2 table

    New Limits to the Drift of Fundamental Constants from Laboratory Measurements

    Get PDF
    We have remeasured the absolute 1S1S-2S2S transition frequency ÎœH\nu_{\rm {H}} in atomic hydrogen. A comparison with the result of the previous measurement performed in 1999 sets a limit of (−29±57)(-29\pm 57) Hz for the drift of ÎœH\nu_{\rm {H}} with respect to the ground state hyperfine splitting ÎœCs\nu_{{\rm {Cs}}} in 133^{133}Cs. Combining this result with the recently published optical transition frequency in 199^{199}Hg+^+ against ÎœCs\nu_{\rm {Cs}} and a microwave 87^{87}Rb and 133^{133}Cs clock comparison, we deduce separate limits on α˙/α=(−0.9±2.9)×10−15\dot{\alpha}/\alpha = (-0.9\pm 2.9)\times 10^{-15} yr−1^{-1} and the fractional time variation of the ratio of Rb and Cs nuclear magnetic moments ÎŒRb/ÎŒCs\mu_{\rm {Rb}}/\mu_{\rm {Cs}} equal to (−0.5±1.7)×10−15(-0.5 \pm 1.7)\times 10^{-15} yr−1^{-1}. The latter provides information on the temporal behavior of the constant of strong interaction.Comment: 4 pages, 3 figures, LaTe

    The space optical clocks project

    Get PDF

    Optical Clocks in Space

    Get PDF
    The performance of optical clocks has strongly progressed in recent years, and accuracies and instabilities of 1 part in 10^18 are expected in the near future. The operation of optical clocks in space provides new scientific and technological opportunities. In particular, an earth-orbiting satellite containing an ensemble of optical clocks would allow a precision measurement of the gravitational redshift, navigation with improved precision, mapping of the earth's gravitational potential by relativistic geodesy, and comparisons between ground clocks.Comment: Proc. III International Conference on Particle and Fundamental Physics in Space (SpacePart06), Beijing 19 - 21 April 2006, to appear in Nucl. Phys.
    • 

    corecore