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Influence of uniaxial stresses on electronic and opticalproperties of β-K2SO4 crystal

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In view of possible practical applications of transparent crystals for mechanical stress sensors, theoretical investigation of piezo(elasto)optic effect in crystals might be useful for searching for proper materials, possessing large coefficients of elasto-optic effect, and for determination of uniaxial stress directions of maximum piezo-optical sensitivity. The influence of the uniaxial stresses on the electronic band structure, density of states, and optical properties of potassium sulphate crystal β-K2SO4 have been studied in the framework of the density functional theory using the ab initio CASTEP code. Increase in the band gap, Eg of the crystal takes place for three crystallographic directions and for moderate uniaxial stresses, σ< 1.5 GPa. Dependencies of principal refractive indices and polarizabilities upon principal uniaxial stresses are discussed together with other features of electronic structure of the crystal.
Wydawca
Rocznik
Strony
11--17
Opis fizyczny
Bibliogr. 20 poz., rys., tab.
Twórcy
  • Faculty of Electronics and Computer Sciences, Koszalin University of Technology, 2 Śniadeckich Str., PL-75-453, Koszalin, Poland
  • Faculty of Electronics and Computer Sciences, Koszalin University of Technology, 2 Śniadeckich Str., PL-75-453, Koszalin, Poland
  • The Ivan Franko National University of Lviv, 8 Kyrylo-and-Mefodii Str., UA-79005 Lviv, Ukraine
  • The Ivan Franko National University of Lviv, 8 Kyrylo-and-Mefodii Str., UA-79005 Lviv, Ukraine
  • The Ivan Franko National University of Lviv, 8 Kyrylo-and-Mefodii Str., UA-79005 Lviv, Ukraine
  • National University “Lviv Politechnic”, 12 Bandera Street, UA-79013 Lviv, Ukraine
Bibliografia
  • [1] NARASIMHAMURTY T.S., Photoelastic and electrooptic properties of crystals, Plenum Press, 1981.
  • [2] LI C., Appl. Optics, 50 (2011), 5315.
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  • [8] ZHELUDEV I.S., GABA V.M., ROMANYUK N.A., URSUL Z.M., Izv. AN USSR, 7 (2) (1986), 386 (in Russian).
  • [9] ROMANYUK N.A., GABA V.M., URSUL Z.M., STADNYK V.YO., Opt. Spectrosc.+, 62 (1) (1987), 94 (in Russian).
  • [10] STADNYK V.YO., ROMANYUK M.O., CHYZH O.Z., VACHULOVYCH V.F., Condens. Matter Phys., 10 (49) (2007), 45.
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  • [14] PERDEW J.P., CHEVARY J.A., VOSKO S.H., JACKSON K.A., PEDERSON M.R., SINGH D.J., FIOLHAIS C., Phys. Rev. B, 46 (1992), 6671.
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  • [17] ANDRIYEVSKY B., CIEPLUCH-TROJANEK W., STADNYK V., TUZYAK M., ROMANYUK M., KURLYAK V., J. Phys. Chem. Solids, 68 (2007), 1892.
  • [18] ANDRIYEVSKY B.V., KURLYAK V.YU., ROMANYUK N.A., URSUL Z.M., Opt. Spectrosc.+, 66 (1989), 623.
  • [19] http://www.tcm.phy.cam.ac.uk/castep/documentation/WebHelp/CASTEP.html.
  • [20] BORN M., WOLF E., Principles of Optics, Pergamon, Oxford, 1984.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-5e393ad9-98b7-40f2-8d9b-5d73ae0b93d6
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