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1.


   
    Two-photon dynamics in coherent Rydberg atomic ensemble / B. He [et al.] // Phys. Rev. Lett. - 2014. - Vol. 112, Is. 13. - Ст. 133606, DOI 10.1103/PhysRevLett.112.133606. - Cited References: 30. - B. H. and C. S. acknowledge the support by AITF and NSERC. M. X. acknowledges the support in part by NBRPC (Grant No. 2012CB921804) and NSFC (Grant No. 11321063). A. V. S. was supported by RFBR 12-02-31621. . - ISSN 0031-9007. - ISSN 1079-7114
РУБ Physics, Multidisciplinary
Рубрики:
ELECTROMAGNETICALLY INDUCED TRANSPARENCY
   PHOTONS

Аннотация: We study the interaction of two photons in a Rydberg atomic ensemble under the condition of electromagnetically induced transparency, combining a semiclassical approach for pulse propagation and a complete quantum treatment for quantum state evolution. We find that the blockade regime is not suitable for implementing photon-photon cross-phase modulation due to pulse absorption and dispersion. However, approximately ideal cross-phase modulation can be realized based on relatively weak interactions, with counterpropagating and transversely separated pulses.

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Держатели документа:
Univ Calgary, Inst Quantum Sci & Technol, Calgary, AB T2N 1N4, Canada
Univ Arkansas, Dept Phys, Fayetteville, AR 72701 USA
LV Kirenskii Inst Phys, Krasnoyarsk 660036, Russia
Siberian Fed Univ, Krasnoyarsk 660041, Russia
Nanjing Univ, Natl Lab Solid State Microstruct, Nanjing 210093, Jiangsu, Peoples R China
Nanjing Univ, Sch Phys, Nanjing 210093, Jiangsu, Peoples R China

Доп.точки доступа:
He, B.; Sharypov, A. V.; Шарыпов, Антон Валерьевич; Sheng, J.T.; Simon, C.; Xiao, Min
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2.


    Arkhipkin, V. G.
    Stark-chirped rapid adiabatic passage: Propagation of laser pulses and spacetime evolution of populations and of two-photon coherence / V. G. Arkhipkin, S. A. Myslivets, I. V. Timofeev // Journal of Experimental and Theoretical Physics. - 2003. - Vol. 97, Is. 4. - P. 711-721, DOI 10.1134/1.1625061 . - ISSN 1063-7761
   Перевод заглавия: Штарковски индуцированное быстрое адиабатическое прохождение: распространение лазерных импульсов, пространственно-временная эволюция населенностей и двухфотонной когерентности
Кл.слова (ненормированные):
Carrier concentration -- Coherent light -- Light propagation -- Photons -- Resonance -- Carrier frequency -- Pulse propagation -- Two-photon coherence -- Laser pulses
Аннотация: On the basis of a vector model, the propagation of laser pulses under the conditions of a two-photon quasiresonance in the case of Stark-chirped rapid adiabatic passage through the resonance is studied with allowance for a diabatic character of the interaction. It is shown that the shape of a pulse propagating in a medium changes, the sweeping of its carrier frequency occurring concurrently. Special features of the spacetime evolution of the population difference in a two-photon transition and of the two-photon coherence during pulse propagation are analyzed. It is established that a complete population inversion and a maximum coherence may exist over a long length of the medium if the corresponding conditions are satisfied at the boundary. A new possibility for achieving a high coherence (close to a maximum value) is proposed. В© 2003 MAIK "Nauka/Interperiodica".

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Доп.точки доступа:
Myslivets, S. A.; Мысливец, Сергей Александрович; Timofeev, I. V.; Тимофеев, Иван Владимирович; Архипкин, Василий Григорьевич
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3.


    Arkhipkin, V. G.
    Spatial evolution of short laser pulses under coherent population trapping / V. G. Arkhipkin, I. V. Timofeev // Physical Review A - Atomic, Molecular, and Optical Physics. - 2001. - Vol. 64, Is. 5. - P. 538111-538118. - Cited References: 30 . - ISSN 1050-2947
Кл.слова (ненормированные):
Computer simulation -- Ground state -- Light propagation -- Mathematical models -- Photons -- Vectors -- Wave equations -- Adiabatic population transfer (APT) -- Laser pulses
Аннотация: Spatial and temporal evolution of two powerful short laser pulses having different wavelengths and interacting with a dense three-level optical medium under coherent population trapping was studied. The duration of the probe pulse and the coupling pulse were assumed to be shorter than any of the relevant atomic relaxation times. Propagation dynamics was found to be strongly dependent on the ratio of the transition oscillator strengths. It was shown that the envelopes of the pulses slightly changed throughout the medium length in the initial stage of propagation.

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Держатели документа:
Institute of Physics, Russian Academy of Sciences, 660036 Krasnoyarsk, Russian Federation

Доп.точки доступа:
Timofeev, I. V.; Тимофеев, Иван Владимирович; Архипкин, Василий Григорьевич
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4.


    Kolovsky, A. R.
    Edge-induced Bloch oscillations and ordinary conductivity in the presence of a gauge field / A. R. Kolovsky // Topological effects and synthetic gauge/magnetic fields for atoms and photons. - Zagreb, 2015. - С. 28
Аннотация: We consider the dynamics of a quantum particle in a finite along the x-direction square lattice in the presence of a normal to the lattice plane ‘magnetic’ field and an in-plane ‘electric’ field aligned with the y-axis. For a vanishing magnetic field this dynamics would be common Bloch oscillations where the particle oscillates in the y-direction with an amplitude inverse proportional to the electric field. We show that a non-zero magnetic field crucially modifies this dynamics. Namely, the new Bloch oscillations consist of time intervals where the particle moves with constant velocity in the x-direction intermitted by intervals where it is accelerated or decelerated along the lattice edges. Next we address this dynamics in the presence of an inelastic scattering process. We show that the system enters a steady regime with the stationary current which is not uniform across the sample: for a weak electric field (linear response regime) it is localized at the lattice edge while for a strong field it extends inside the sample. A semi-analytical method for calculating the stationary current is presented. Figure 3.3: Total stationary current as the function of an electric field for two samples of different width. In the linear response regime the current is due to the edge states and, hence, is independent of the sample width.

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Доп.точки доступа:
Коловский, Андрей Радиевич; Topological effects and synthetic gauge/magnetic fields for atoms and photons, Workshop(2015 ; 29 Sept.-1 Oct. ; Zagreb, Croatia)
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5.


    Popov, A. K.
    Generation, amplification, frequency conversion, and reversal of propagation of THz photons in nonlinear hyperbolic metamaterial / A. K. Popov, S. A. Myslivets // Opt. Lett. - 2017. - Vol. 42, Is. 20. - P. 4151-4154, DOI 10.1364/OL.42.004151. - Cited References: 13. - Army Research Office (ARO) (W911NF-14-1-0619); Russian Foundation for Basic Research (RFBR) (15-02-03959A). The authors thank I. S. Nefedov for helpful discussions. . - ISSN 0146-9592
Кл.слова (ненормированные):
Carbon -- Metamaterials -- Optical frequency conversion -- Photons -- Terahertz waves -- Yarn -- Directed energy -- Electromagnetic modes -- Entangled photons -- Nonlinear hyperbolic -- Optical parametric amplification -- Proof of principles -- Three wave mixing -- THz photon -- Optical parametric amplifiers
Аннотация: We propose metamaterial (MM) that supports a mixture of three or more normal and backward electromagnetic modes with equal co-directed phase velocities and mutually contra-directed energy fluxes. This enables extraordinary three-wave mixing, greatly enhanced optical parametric amplification, and frequency-changing generation of entangled photons in the reflection direction. Proof-of-principle numerical simulation of such processes is presented based on the particular example of the wave-guided terahertz waves contra-propagating in the MM made of carbon nanotubes.

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Держатели документа:
Birck Nanotechnology Center, Purdue University, West Lafayette, IN, United States
Kirensky Institute of Physics, Federal Research Center KSC, SB RAS, 50, Akademgorodok, Krasnoyarsk, Russian Federation
Siberian Federal University, 79 Svobodny Av., Krasnoyarsk, Russian Federation

Доп.точки доступа:
Myslivets, S. A.; Мысливец, Сергей Александрович
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6.


    Bikbaev, R. G.
    Transparent conductive oxides for the epsilon-near-zero Tamm plasmon polaritons / R. G. Bikbaev, S. Ya Vetrov, I. V. Timofeev // J. Opt. Soc. Am. B. - 2019. - Vol. 36, Is. 10. - P. 2817-2823, DOI 10.1364/JOSAB.36.002817. - Cited References: 44. - The reported study was funded by RFBR according to the research project No 18-32-00053 and financial support RFBR and MOST according to the research project No 19-52-52006. . - ISSN 0740-3224
Кл.слова (ненормированные):
Aluminum oxide -- II-VI semiconductors -- Indium compounds -- Infrared devices -- Optical films -- Phonons -- Photons -- Plasmons -- Q factor measurement -- Tin oxides -- Transfer matrix method -- Transparent conducting oxides -- Zinc oxide
Аннотация: We demonstrate the possibility of using transparent conducting oxides [aluminum-doped zinc oxide (AZO), gallium-doped zinc oxide (GZO), indium tin oxide (ITO)] to form Tamm plasmon polaritons in the near-infrared spectral range where the permittivity of oxides is near zero. The spectral properties of the structures are investigated in the framework of the temporal coupled-mode theory and confirmed by the transfer matrix method. It is found that in the critical coupling conditions, the maximal Q-factor of a Tamm plasmon polariton is achieved when a photonic crystal is conjugated with the AZO film, while at the conjugation with the ITO films, the broadest spectral line is obtained. The sensitivity of the wavelength and spectral width of the Tamm plasmon polariton to changes in the oxide film thickness, bulk concentration of a dopant, and angle of incidence is demonstrated.

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Держатели документа:
Kirensky Institute of Physics, Federal Research Center KSC SB RAS, Krasnoyarsk, 660036, Russian Federation
Siberian Federal University, Krasnoyarsk, 660041, Russian Federation

Доп.точки доступа:
Vetrov, S. Ya.; Ветров, Степан Яковлевич; Timofeev, I. V.; Тимофеев, Иван Владимирович; Бикбаев, Рашид Гельмединович
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7.


   
    Photosensitivity and reflectivity of the active layer in a Tamm-plasmon-polariton-based organic solar cell / R. G. Bikbaev, S. Y. Vetrov, I. V. Timofeev, V. F. Shabanov // Appl. Opt. - 2021. - Vol. 60, Is. 12. - P. 3338-3343, DOI 10.1364/AO.421374. - Cited References: 49. - The reported study was funded by the grant of the President of Russian Federation No. MK-46.2021.1.2 and by Russian Foundation for Basic Research, Government of Krasnoyarsk Territory, Krasnoyarsk Region Science and Technology Support Fund to the research project No. 19-42-240004 . - ISSN 1559-128X
Кл.слова (ненормированные):
Light sensitive materials -- Mirrors -- Phonons -- Photons -- Photosensitivity -- Plasmons -- Active Layer -- Dielectric mirrors -- Integral absorption -- Lower boundary -- Metal contacts -- Photosensitive layers -- Plasmon-polaritons -- Organic solar cells
Аннотация: We report on a model of an organic solar cell in which a photosensitive layer doped with plasmon nanoparticles acts as not only an absorbing element but also a mirror involved in the formation of the Tamm plasmon polariton. It is shown that such solar cells can be fabricated without metal contacts, thus avoiding undesired losses in the system. Methods for an additional increase in the integral absorption by applying metal or dielectric mirrors to the lower boundary of the photonic crystal are proposed. It has been found that the integral absorption in the active layer can be increased by15%compared to classical optimized planar solar cells.

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Держатели документа:
Kirensky Institute of Physics, Federal Research Center KSC SB RAS, Krasnoyarsk, 660036, Russian Federation
Siberian Federal University, Krasnoyarsk, 660041, Russian Federation

Доп.точки доступа:
Bikbaev, R. G.; Бикбаев, Рашид Гельмединович; Vetrov, S. Ya.; Ветров, Степан Яковлевич; Timofeev, I. V.; Тимофеев, Иван Владимирович; Shabanov, V. F.; Шабанов, Василий Филиппович
}
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8.


   
    Effect of electron delocalization on the “recoil-free” absorption of γ-Ray photons in Fe1.75V0.25BO4 warwickite / Y. V. Knyazev, O. A. Bayukov, M. S. Shustin [et al.] // JETP Letters. - 2021. - Vol. 113, Is. 4. - P. 279-284, DOI 10.1134/S002136402104010X. - Cited References: 42. - This work was supported by the Council of the President of the Russian Federation for Support of Young Scientists and Leading Scientific Schools (project no. MK-2339.2020.2) and by the Russian Foundation for Basic Research (project no. 20-02-00559-a) . - ISSN 0021-3640
Аннотация: Mössbauer spectroscopy is used to study the characteristic features of the crystal lattice dynamics in powdered single crystals of Fe1.75V0.25BO4 warwickite in the temperature range of 4.2–505 K. The Debye temperature (ΘD = 260 K) is determined from the temperature dependence of the probability of the Mössbauer effect in the thin absorber approximation. It is found that the electron delocalization related to the fast electronic transfer between neighboring Fe3+ and Fe2+ cations takes place in the temperature range of 260−505 K. As a result, iron cations exhibiting the mixed valence (Fe2.5+) arise. This process correlates with a change in the elastic properties of the lattice. Such correlation leads to a sharp decrease in the recoil-free absorption of γ‑ray photons by the crystal lattice in the range of 260–400 K.

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Публикация на русском языке Влияние электронной делокализации на поглощение "без отдачи" γ-квантов в варвиките Fe1.75V0.25BO4 [Текст] / Ю. В. Князев, О. А. Баюков, М. С. Шустин [и др.] // Письма в ЖЭТФ. - 2021. - Т. 113 Вып. 4. - С. 267-273

Держатели документа:
Kirensky Institute of Physics, Federal Research Center KSC, Siberian Branch, Russian Academy of Sciences, Krasnoyarsk, 660036, Russian Federation
Institute of Chemistry, Far Eastern Branch, Russian Academy of Sciences, Vladivostok, 690022, Russian Federation
Reshetnev Siberian State University of Science and Technology, Krasnoyarsk, 660037, Russian Federation
Nikolaev Institute of Inorganic Chemistry, Siberian Branch, Russian Academy of Sciences, Novosibirsk, 630090, Russian Federation

Доп.точки доступа:
Knyazev, Yu. V.; Князев, Юрий Владимирович; Bayukov, O. A.; Баюков, Олег Артемьевич; Shustin, M. S.; Шустин, Максим Сергеевич; Balatskii, D. V.; Bel’skaya, N. A.; Gromilov, S. A.; Sukhikh, A. S.; Rudenko, V. V.; Руденко, Валерий Васильевич; Kazak, N. V.; Казак, Наталья Валерьевна
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9.


   
    Nanostructured photosensitive layer for Tamm-plasmon-polariton-based organic solar cells / R. G. Bikbaev, D. A. Pykhtin, S. Ya. Vetrov [et al.] // Appl. Opt. - 2022. - Vol. 61, Is. 17. - P. 5049-5054, DOI 10.1364/AO.456413. - Cited References: 47. - Council on Grants of the President of the Russian Federation (MK-46.2021.1.2) . - ISSN 1559-128X
Кл.слова (ненормированные):
Efficiency -- Nanoparticles -- Organic solar cells -- Phonons -- Photons -- Photosensitivity -- Plasmonics -- Refractive index -- Scattering parameters -- Transfer matrix method
Аннотация: The influence of the volume fraction of plasmonic nanoparticles on the efficiency of the Tamm-plasmon-polariton-based organic solar cell is investigated in the framework of temporal coupled mode theory and confirmed by the transfer matrix method. It is shown that, unlike a conventional plasmonic solar cell, in which the efficiency is directly proportional to the volume fraction of nanoparticles in the photosensitive layer, the efficiency of the proposed solar cell reaches the highest value at low volume fractions. This effect is explained by the fact that at these volume fractions, the critical coupling condition of the incident field with the Tamm plasmon polariton is fulfilled. Thus, for the incoming radiation range of 350 to 500 nm, a maximal cell efficiency of 28% is achieved with a volume fraction of nanoparticles equal to 10%. Additionally, the optical properties of the photosensitive layer are compared for the cases of determining its complex refractive index by effective medium theory and the S-parameter retrieval method. A good agreement between the results is demonstrated, which encourages the use of the effective medium theory for preliminary calculations.

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Держатели документа:
Kirensky Institute of Physics, Federal Research Center KSC SB RAS, Krasnoyarsk, 660036, Russian Federation
Siberian Federal University, Krasnoyarsk, 660041, Russian Federation

Доп.точки доступа:
Bikbaev, R. G.; Бикбаев, Рашид Гельмединович; Pykhtin, D. A.; Vetrov, S. Ya.; Ветров, Степан Яковлевич; Timofeev, I. V.; Тимофеев, Иван Владимирович; Shabanov, V. F.; Шабанов, Василий Филиппович
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