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Arkhipov R, Pakhomov A, Arkhipov M, Babushkin I, Demircan A, Morgner U, Rosanov N. Population difference gratings created on vibrational transitions by nonoverlapping subcycle THz pulses. Sci Rep 2021; 11:1961. [PMID: 33479279 PMCID: PMC7820408 DOI: 10.1038/s41598-021-81275-8] [Citation(s) in RCA: 9] [Impact Index Per Article: 2.3] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/11/2020] [Accepted: 01/04/2021] [Indexed: 11/09/2022] Open
Abstract
We study theoretically a possibility of creation and ultrafast control (erasing, spatial frequency multiplication) of population density gratings in a multi-level resonant medium having a resonance transition frequency in the THz range. These gratings are produced by subcycle THz pulses coherently interacting with a nonlinear medium, without any need for pulses to overlap, thereby utilizing an indirect pulse interaction via an induced coherent polarization grating. High values of dipole moments of the transitions in the THz range facilitate low field strength of the needed THz excitation. Our results clearly show this possibility in multi-level resonant media. Our theoretical approach is based on an approximate analytical solution of time-dependent Schrödinger equation (TDSE) using perturbation theory. Remarkably, as we show here, quasi-unipolar subcycle pulses allow more efficient excitation of higher quantum levels, leading to gratings with a stronger modulation depth. Numerical simulations, performed for THz resonances of the [Formula: see text] molecule using Bloch equations for density matrix elements, are in agreement with analytical results in the perturbative regime. In the strong-field non-perturbative regime, the spatial shape of the gratings becomes non-harmonic. A possibility of THz radiation control using such gratings is discussed. The predicted phenomena open novel avenues in THz spectroscopy of molecules with unipolar and quasi-unipolar THz light bursts and allow for better control of ultra-short THz pulses.
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Affiliation(s)
- Rostislav Arkhipov
- St. Petersburg State University, Saint Petersburg, Russian Federation
- ITMO University, Saint Petersburg, Russian Federation
- Ioffe Institute, Saint Petersburg, Russian Federation
| | | | - Mikhail Arkhipov
- St. Petersburg State University, Saint Petersburg, Russian Federation
- ITMO University, Saint Petersburg, Russian Federation
| | - Ihar Babushkin
- University of Hannover, Hannover, Germany.
- Cluster of Excellence PhoenixD (Photonics, Optics, and Engineering-Innovation Across Disciplines), Hannover, Germany.
- Max Born Institute, Berlin, Germany.
| | - Ayhan Demircan
- University of Hannover, Hannover, Germany
- Cluster of Excellence PhoenixD (Photonics, Optics, and Engineering-Innovation Across Disciplines), Hannover, Germany
| | - Uwe Morgner
- University of Hannover, Hannover, Germany
- Cluster of Excellence PhoenixD (Photonics, Optics, and Engineering-Innovation Across Disciplines), Hannover, Germany
| | - Nikolay Rosanov
- ITMO University, Saint Petersburg, Russian Federation
- Ioffe Institute, Saint Petersburg, Russian Federation
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Siemion A. The Magic of Optics-An Overview of Recent Advanced Terahertz Diffractive Optical Elements. SENSORS 2020; 21:s21010100. [PMID: 33375221 PMCID: PMC7795556 DOI: 10.3390/s21010100] [Citation(s) in RCA: 13] [Impact Index Per Article: 2.6] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 11/19/2020] [Revised: 12/17/2020] [Accepted: 12/22/2020] [Indexed: 02/05/2023]
Abstract
Diffractive optical elements are well known for being not only flat but also lightweight, and are characterised by low attenuation. In different spectral ranges, they provide better efficiency than commonly used refractive lenses. An overview of the recently invented terahertz optical structures based on diffraction design is presented. The basic concepts of structure design together with various functioning of such elements are described. The methods for structure optimization are analysed and the new approach of using neural network is shown. The paper illustrates the variety of structures created by diffractive design and highlights optimization methods. Each structure has a particular complex transmittance that corresponds to the designed phase map. This precise control over the incident radiation phase changes is limited to the design wavelength. However, there are many ways to overcome this inconvenience allowing for broadband functioning.
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Affiliation(s)
- Agnieszka Siemion
- Faculty of Physics, Warsaw University of Technology, 75 Koszykowa, 00-662 Warsaw, Poland
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Arkhipov R, Pakhomov A, Arkhipov M, Demircan A, Morgner U, Rosanov N, Babushkin I. Selective ultrafast control of multi-level quantum systems by subcycle and unipolar pulses. OPTICS EXPRESS 2020; 28:17020-17034. [PMID: 32549512 DOI: 10.1364/oe.393142] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.6] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 03/19/2020] [Accepted: 04/21/2020] [Indexed: 06/11/2023]
Abstract
The most typical way to optically control population of atomic and molecular systems is to illuminate them with radiation, resonant to the relevant transitions. Here we consider a possibility to control populations with the subcycle and even unipolar pulses, containing less than one oscillation of electric field. Despite the spectrum of such pulses covers several levels at once, we show that it is possible to selectively excite the levels of our choice by varying the driving pulse shape, duration or time delay between consecutive pulses. The pulses which are not unipolar, but have a peak of electric field of one polarity much higher (and shorter) than of the opposite one, are also capable for such control.
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