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Denis Mishin

Publications and source records attributed to Denis Mishin.

3 recordsLinked to original sources

Coherence of Microwave and Optical Qubit Levels in Neutral Thulium

Hyperfine-encoded qubits in alkali atoms have established themselves as robust platforms for quantum computing, while alkaline-earth-like elements expand the state manipulation toolbox through their rich spectrum of optical transitions and metastable states. In this work, we demonstrate that thulium is a viable candidate for quantum computing, combining advantages of hyperfine qubit encoding with a rich energy-level structure of alkaline-earth-like atoms. We describe protocols for the initial state preparation and state-selective readout, and show single-qubit operations on the microwave transition at $1 497$ MHz. We demonstrate ground state hyperfine qubit coherence times up to $T_2^* = 22^{+2}_{-2}$ s and $T_2 = 55^{+59}_{-14}$ s, representing record-scale performance for neutral-atom systems. Furthermore, we show operations involving metastable optical states, including shelving for the state-selective readout as well as coherent population transfer of the ground state qubit with coherence time primarily limited by the metastable level natural lifetime of $112$ ms. These results mark the first step toward using thulium for quantum computing applications and highlight its promising characteristics.

quant-ph

Combined microwave and optical spectroscopy for hyperfine structure analysis in thulium atoms

The hyperfine structure of atoms and ions is widely used in fundamental and applied research. Accurate knowledge of hyperfine splitting values is essential for quantum metrology applications as well as for improving the performance of systems designed for quantum computing and simulation. We present refined values of the hyperfine splitting frequencies of the ground and clock states of thulium atom, $f_{g}^\textrm{HFS}=1\,496\,550\,658.23(3)$\,Hz and $f_{c}^\textrm{HFS}=2\,113\,946\,873.08(9)$\,Hz, respectively. The measurements are performed on an ultracold atomic ensemble in an optical lattice using combined microwave and optical transition spectroscopy. Our results improve the accuracy by 2 and 7 orders of magnitude for $f_{g}^\textrm{HFS}$ and $f_{c}^\textrm{HFS}$, respectively, compared to the previously published values. We also refine the value of the Land\'e g-factor of the clock level to $g_c = 0.85479(11)$.

physics.atom-ph

Deep Laser Cooling of Thulium Atoms to Sub-$\mu$K Temperatures in Magneto-Optical Trap

Deep laser cooling of atoms, ions, and molecules facilitates the study of fundamental physics as well as applied research. In this work, we report on the narrow-line laser cooling of thulium atoms at the wavelength of $506.2\,\textrm{nm}$ with the natural linewidth of $7.8\,\textrm{kHz}$, which widens the limits of atomic cloud parameters control. Temperatures of about $400\,\textrm{nK}$, phase-space density of up to $3.5\times10^{-4}$ and $2\times10^6$ number of trapped atoms were achieved. We have also demonstrated formation of double cloud structure in an optical lattice by adjusting parameters of the $506.2\,\textrm{nm}$ magneto-optical trap. These results can be used to improve experiments with BEC, atomic interferometers, and optical clocks.

physics.atom-ph