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Publications in Math-Net.Ru |
Citations |
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2024 |
1. |
S. Yu. Stremoukhov, P. A. Forsh, K. Yu. Khabarova, N. N. Kolachevsky, “Model of coupled quantum memristors based on a single trapped $^{171}$Yb$^+$ ion”, Pis'ma v Zh. Èksper. Teoret. Fiz., 119:5 (2024), 343–347 ; JETP Letters, 119:5 (2024), 352–356 |
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2. |
P. A. Forsh, S. Yu. Stremoukhov, A. S. Frolova, K. Yu. Khabarova, N. N. Kolachevsky, “Quantum memristors: a new approach to neuromorphic computing”, UFN, 194:9 (2024), 905–916 ; Phys. Usp., 67:9 (2024), 855–865 |
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2023 |
3. |
A. K. Fedorov, E. O. Kiktenko, K. Yu. Khabarova, N. N. Kolachevsky, “Quantum entanglement, teleportation, and randomness: Nobel Prize in Physics 2022”, UFN, 193:11 (2023), 1162–1172 ; Phys. Usp., 66:11 (2023), 1095–1104 |
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4. |
A. A. Belyaev, V. G. Voronzov, N. A. Demidov, K. Yu. Khabarova, N. N. Kolachevsky, “N G Basov's legacy: from the first masers to optical frequency standards”, UFN, 193:10 (2023), 1091–1102 ; Phys. Usp., 66:10 (2023), 1026–1036 |
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2022 |
5. |
N. V. Semenin, A. S. Borisenko, I. V. Zalivako, I. A. Semerikov, M. D. Aksenov, K. Yu. Khabarova, N. N. Kolachevsky, “Determination of the heating rate and temperature of an ion chain in a linear Paul trap by the dephasing of Rabi oscillations”, Pis'ma v Zh. Èksper. Teoret. Fiz., 116:2 (2022), 74–79 ; JETP Letters, 116:2 (2022), 77–82 |
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6. |
K. S. Kudeyarov, V. K. Milyukov, D. S. Kryuchkov, I. A. Semerikov, O. A. Ivlev, K. Yu. Khabarova, N. N. Kolachevsky, “Characteristics of a heterodyne laser interferometer laboratory model for the development of a space gravimetry project”, Kvantovaya Elektronika, 52:6 (2022), 555–559 [Quantum Electron., 52:6 (2022), 555–559 ] |
7. |
D. A. Mishin, D. I. Provorchenko, D. O. Tregubov, A. A. Golovizin, K. Yu. Khabarova, V. N. Sorokin, N. N. Kolachevsky, “Effect of optical lattice field on characteristics of a clock transition in thulium atoms”, Kvantovaya Elektronika, 52:6 (2022), 505–512 [Quantum Electron., 52:6 (2022), 505–512 ] |
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8. |
K. Yu. Khabarova, I. V. Zalivako, N. N. Kolachevsky, “Methods of quantum logic in ion frequency standards, quantum computers, and modern spectroscopy”, UFN, 192:12 (2022), 1305–1312 ; Phys. Usp., 65:12 (2022), 1217–1223 |
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2021 |
9. |
N. V. Semenin, A. S. Borisenko, I. V. Zalivako, I. A. Semerikov, K. Yu. Khabarova, N. N. Kolachevsky, “Optimization of the readout fidelity of the quantum state of an optical qubit in the 171yb+ ion”, Pis'ma v Zh. Èksper. Teoret. Fiz., 114:8 (2021), 553–559 ; JETP Letters, 114:8 (2021), 486–492 |
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10. |
K. S. Kudeyarov, A. A. Golovizin, A. S. Borisenko, N. O. Zhadnov, I. V. Zalivako, D. S. Kryuchkov, E. O. Chiglintsev, G. A. Vishnyakova, K. Yu. Khabarova, N. N. Kolachevsky, “Comparison of three ultrastable lasers with a femtosecond frequency comb”, Pis'ma v Zh. Èksper. Teoret. Fiz., 114:5 (2021), 291–297 ; JETP Letters, 114:5 (2021), 243–249 |
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11. |
I. V. Zalivako, I. A. Semerikov, A. S. Borisenko, M. D. Aksenov, K. Yu. Khabarova, N. N. Kolachevsky, “Experimental study of the optical qubit on the $435$-nm quadrupole transition in the $^{171}$Yb$^{+}$ ion”, Pis'ma v Zh. Èksper. Teoret. Fiz., 114:2 (2021), 53–59 ; JETP Letters, 114:2 (2021), 59–64 |
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12. |
D. I. Provorchenko, D. O. Tregubov, D. A. Mishin, A. A. Golovizin, E. S. Fedorova, K. Yu. Khabarova, V. N. Sorokin, N. N. Kolachevsky, “Investigation of the transition at a wavelength of 506 nm, intended for deep cooling of thulium atoms”, Kvantovaya Elektronika, 51:6 (2021), 479–483 [Quantum Electron., 51:6 (2021), 479–483 ] |
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13. |
K. Yu. Khabarova, N. N. Kolachevsky, “Proton charge radius”, UFN, 191:10 (2021), 1095–1106 ; Phys. Usp., 64:10 (2021), 1038–1048 |
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2020 |
14. |
L. A. Akopyan, I. V. Zalivako, K. E. Lakhmanskiy, K. Yu. Khabarova, N. N. Kolachevsky, “Optimization of the normal mode spectrum of linear ion crystals in Paul traps for eit cooling using an optical lattice”, Pis'ma v Zh. Èksper. Teoret. Fiz., 112:9 (2020), 626–631 ; JETP Letters, 112:9 (2020), 585–590 |
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15. |
I. V. Zalivako, I. A. Semerikov, A. S. Borisenko, M. D. Aksenov, P. A. Vishnyakov, P. L. Sidorov, N. V. Semenin, A. A. Golovizin, K. Yu. Khabarova, N. N. Kolachevsky, “Compact ultrastable laser system for spectroscopy of <sup>2</sup>S<sub>1/2</sub> → <sup>2</sup>D<sub>3/2</sub> quadrupole transition in <sup>171</sup>Yb<sup>+</sup> ion”, Kvantovaya Elektronika, 50:9 (2020), 850–854 [Quantum Electron., 50:9 (2020), 850–854 ] |
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16. |
D. S. Kryuchkov, N. O. Zhadnov, K. S. Kudeyarov, G. A. Vishnyakova, K. Yu. Khabarova, N. N. Kolachevsky, “Compensation of residual amplitude modulation fluctuations in an optoelectronic system for laser radiation frequency stabilisation”, Kvantovaya Elektronika, 50:6 (2020), 590–594 [Quantum Electron., 50:6 (2020), 590–594 ] |
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17. |
D. O. Tregubov, A. A. Golovizin, E. S. Fedorova, D. A. Mishin, D. I. Provorchenko, K. Yu. Khabarova, V. N. Sorokin, N. N. Kolachevsky, “Detection of the clock transition in thulium atoms by using repump laser radiation”, Kvantovaya Elektronika, 50:6 (2020), 566–570 [Quantum Electron., 50:6 (2020), 566–570 ] |
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18. |
K. S. Kudeyarov, D. S. Kryuchkov, G. A. Vishnyakova, N. O. Zhadnov, K. Yu. Khabarova, N. N. Kolachevsky, “Frequency transfer via an ultra-stable free-space link”, Kvantovaya Elektronika, 50:3 (2020), 267–271 [Quantum Electron., 50:3 (2020), 267–271 ] |
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19. |
E. S. Fedorova, D. O. Tregubov, A. A. Golovizin, D. A. Mishin, D. I. Provorchenko, K. Yu. Khabarova, V. N. Sorokin, N. N. Kolachevsky, “Rabi spectroscopy of the clock transition in thulium atoms in a one-dimensional optical lattice”, Kvantovaya Elektronika, 50:3 (2020), 220–224 [Quantum Electron., 50:3 (2020), 220–224 ] |
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2019 |
20. |
D. O. Tregubov, A. A. Golovizin, E. S. Fedorova, K. Yu. Khabarova, V. N. Sorokin, N. N. Kolachevsky, “Magic wavelengths near 800 nm for precision spectroscopy of an inner-shell transition in thulium atoms”, Kvantovaya Elektronika, 49:11 (2019), 1028–1031 [Quantum Electron., 49:11 (2019), 1028–1031 ] |
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21. |
N. O. Zhadnov, G. A. Vishnyakova, K. S. Kudeyarov, D. S. Kryuchkov, K. Yu. Khabarova, N. N. Kolachevsky, “Temperature drift contribution to frequency instability of silicon Fabry–Perot cavities”, Kvantovaya Elektronika, 49:5 (2019), 424–428 [Quantum Electron., 49:5 (2019), 424–428 ] |
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22. |
E. S. Fedorova, D. O. Tregubov, A. A. Golovizin, G. A. Vishnyakova, D. A. Mishin, D. I. Provorchenko, K. Yu. Khabarova, V. N. Sorokin, N. N. Kolachevsky, “Optical pumping of ultracold thulium atoms to a lower level of the clock transition and study of their depolarisation”, Kvantovaya Elektronika, 49:5 (2019), 418–423 [Quantum Electron., 49:5 (2019), 418–423 ] |
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2018 |
23. |
I. V. Zalivako, A. S. Borisenko, I. A. Semerikov, K. Yu. Khabarova, N. N. Kolachevsky, “Doppler laser cooling and vibrational spectrum of <sup>24</sup>Mg<sup>+</sup> ions in a linear Paul trap”, Kvantovaya Elektronika, 48:5 (2018), 448–452 [Quantum Electron., 48:5 (2018), 448–452 ] |
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24. |
N. O. Zhadnov, K. S. Kudeyarov, D. S. Kryuchkov, I. A. Semerikov, K. Yu. Khabarova, N. N. Kolachevsky, “On the thermal noise limit of ultrastable optical cavities”, Kvantovaya Elektronika, 48:5 (2018), 425–430 [Quantum Electron., 48:5 (2018), 425–430 ] |
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25. |
E. S. Kalganova, A. A. Golovizin, D. O. Shevnin, D. O. Tregubov, K. Yu. Khabarova, V. N. Sorokin, N. N. Kolachevsky, “Trapping of thulium atoms in a cavity-enhanced optical lattice near a magic wavelength of 814.5 nm”, Kvantovaya Elektronika, 48:5 (2018), 415–418 [Quantum Electron., 48:5 (2018), 415–418 ] |
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26. |
K. Yu. Khabarova, E. S. Kalganova, N. N. Kolachevsky, “Accurate frequency and time dissemination in the optical domain”, UFN, 188:2 (2018), 221–230 ; Phys. Usp., 61:2 (2018), 203–211 |
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2017 |
27. |
K. Yu. Khabarova, K. S. Kudeyarov, G. A. Vishnyakova, N. N. Kolachevsky, “Short-haul fibre-optic communication link with a phase noise compensation system for optical frequency signal transmission”, Kvantovaya Elektronika, 47:9 (2017), 794–797 [Quantum Electron., 47:9 (2017), 794–797 ] |
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28. |
A. A. Golovizin, E. S. Kalganova, D. D. Sukachev, G. A. Vishnyakova, D. O. Tregubov, K. Yu. Khabarova, V. N. Sorokin, N. N. Kolachevsky, “Methods for determining the polarisability of the fine structure levels in the ground state of the thulium atom”, Kvantovaya Elektronika, 47:5 (2017), 479–483 [Quantum Electron., 47:5 (2017), 479–483 ] |
6
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29. |
I. V. Zalivako, I. A. Semerikov, A. S. Borisenko, K. Yu. Khabarova, V. N. Sorokin, N. N. Kolachevsky, “Microwave frequency standard on <sup>25</sup>Mg<sup>+</sup> ions: expected characteristics and prospects”, Kvantovaya Elektronika, 47:5 (2017), 426–430 [Quantum Electron., 47:5 (2017), 426–430 ] |
3
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30. |
N. O. Zhadnov, A. V. Masalov, V. N. Sorokin, K. Yu. Khabarova, N. N. Kolachevsky, “A new generation of cryogenic high-Q Fabry–Perot resonators for ultrastable lasers”, Kvantovaya Elektronika, 47:5 (2017), 421–425 [Quantum Electron., 47:5 (2017), 421–425 ] |
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31. |
P. V. Borisyuk, O. S. Vasil'ev, S. P. Derevyashkin, N. N. Kolachevsky, Yu. Yu. Lebedinskii, S. S. Poteshin, A. A. Sysoev, E. V. Tkalya, D. O. Tregubov, V. I. Troyan, K. Yu. Khabarova, V. I. Yudin, V. P. Yakovlev, “Trapping, retention and laser cooling of Th<sup>3+</sup> ions in a multisection linear quadrupole trap”, Kvantovaya Elektronika, 47:5 (2017), 406–411 [Quantum Electron., 47:5 (2017), 406–411 ] |
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32. |
O. I. Berdasov, A. Yu. Gribov, G. S. Belotelov, V. G. Pal'chikov, S. A. Strelkin, K. Yu. Khabarova, N. N. Kolachevsky, S. N. Slyusarev, “Ultrastable laser system for spectroscopy of the <sup>1</sup>S<sub>0</sub> – <sup>3</sup>P<sub>0</sub> clock transition in Sr atoms”, Kvantovaya Elektronika, 47:5 (2017), 400–405 [Quantum Electron., 47:5 (2017), 400–405 ] |
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33. |
K. Yu. Khabarova, K. S. Kudeyarov, N. N. Kolachevsky, “Frequency standards based on ultracold atoms in tests of general relativity, navigation and gravimetry”, Kvantovaya Elektronika, 47:5 (2017), 394–399 [Quantum Electron., 47:5 (2017), 394–399 ] |
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2016 |
34. |
I. A. Semerikov, I. V. Zalivako, T. V. Shpakovskii, A. S. Borisenko, K. Yu. Khabarova, V. N. Sorokin, N. N. Kolachevsky, “Multiparticle losses in a linear quadrupole Paul trap”, Kvantovaya Elektronika, 46:10 (2016), 935–940 [Quantum Electron., 46:10 (2016), 935–940 ] |
10
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35. |
G. A. Vishnyakova, A. A. Golovizin, E. S. Kalganova, V. N. Sorokin, D. D. Sukachev, D. O. Tregubov, K. Yu. Khabarova, N. N. Kolachevsky, “Ultracold lanthanides: from optical clock to a quantum simulator”, UFN, 186:2 (2016), 176–182 ; Phys. Usp., 59:2 (2016), 168–173 |
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2015 |
36. |
A. A. Golovizin, E. S. Kalganova, D. D. Sukachev, G. A. Vishnyakova, I. A. Semerikov, V. V. Soshenko, D. O. Tregubov, A. V. Akimov, N. N. Kolachevsky, K. Yu. Khabarova, V. N. Sorokin, “Detection of the clock transition ($1.14\ \mu\mathrm m$) in ultra-cold thulium atoms”, Kvantovaya Elektronika, 45:5 (2015), 482–485 [Quantum Electron., 45:5 (2015), 482–485 ] |
12
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37. |
K. Yu. Khabarova, A. A. Galyshev, S. A. Strelkin, A. S. Kostin, G. S. Belotelov, O. I. Berdasov, A. Gribov, N. N. Kolachevsky, S. N. Slyusarev, “Spectroscopy of intercombination transition <sup>1</sup>S<sub>0</sub> – <sup>3</sup>P<sub>1</sub> for secondary cooling of strontium atoms”, Kvantovaya Elektronika, 45:2 (2015), 166–170 [Quantum Electron., 45:2 (2015), 166–170 ] |
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2014 |
38. |
N. N. Kolachevsky, K. Yu. Khabarova, “Precision laser spectroscopy in fundamental studies”, UFN, 184:12 (2014), 1354–1362 ; Phys. Usp., 57:12 (2014), 1230–1238 |
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2012 |
39. |
K. Yu. Khabarova, S. N. Slyusarev, S. A. Strelkin, G. S. Belotelov, A. S. Kostin, V. G. Pal'chikov, N. N. Kolachevsky, “Laser system for secondary cooling of <sup>87</sup>Sr atoms”, Kvantovaya Elektronika, 42:11 (2012), 1021–1026 [Quantum Electron., 42:11 (2012), 1021–1026 ] |
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Organisations |
- P. N. Lebedev Physical Institute, Russian Academy of Sciences, Moscow
- Moscow Institute of Physics and Technology (State University), Dolgoprudny, Moscow region
- International Center for Quantum Optics and Quantum Technologies (the Russian Quantum Center), Moscow, Skolkovo
- Russian Quantum Center, Skolkovo, Moscow
- All-Russian Scientific Research Institute of Physical-Technical and Radiotechnical Measurements, Mendeleevo, Moscow region
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