X-ray Cherenkov radiation near photoabsorption edge; Physics-Uspekhi; Vol. 68, iss. 12

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Parent link:Physics-Uspekhi.— .— London: Turpion Ltd
Vol. 68, iss. 12.— 2025.— P. 1268–1282
Další autoři: Potylitsyn A. P. Alexander Petrovich, Vukolov A. V. Artem Vladimirovich, Uglov S. R. Sergey Romanovich, Shevelev M. V. Mihail Viktorovich
Shrnutí:Title screen
A radiation mechanism — Vavilov—Cherenkov radiation (VCR) in the soft X-ray region — is considered. A region of anomalous dispersion exists near the photoabsorption edges of some materials where the real part of the permittivity exceeds unity. It is in this narrow frequency range that the VCR mechanism is realized. Analytical expressions for spectral and angular distributions of VCR from a target, an inclined plate, are derived. The VCR formation length is estimated taking into account absorption in the target (radiator) material. An experiment is discussed in which VCR in the 100-eV photon energy range was examined using a 5.7-MeV electron beam from the Tomsk Polytechnic University microtron. Experimental data and theory are shown to be in satisfactory agreement
Текстовый файл
AM_Agreement
Jazyk:angličtina
Vydáno: 2025
Témata:
On-line přístup:https://doi.org/10.3367/UFNe.2025.05.039926
Médium: xMaterials Elektronický zdroj Kapitola
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=684815

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330 |a A radiation mechanism — Vavilov—Cherenkov radiation (VCR) in the soft X-ray region — is considered. A region of anomalous dispersion exists near the photoabsorption edges of some materials where the real part of the permittivity exceeds unity. It is in this narrow frequency range that the VCR mechanism is realized. Analytical expressions for spectral and angular distributions of VCR from a target, an inclined plate, are derived. The VCR formation length is estimated taking into account absorption in the target (radiator) material. An experiment is discussed in which VCR in the 100-eV photon energy range was examined using a 5.7-MeV electron beam from the Tomsk Polytechnic University microtron. Experimental data and theory are shown to be in satisfactory agreement 
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