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Experimental investigation of the anisotropy of quadratic electrooptic effect in ADP

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International Conference on Solid State Crystals : Material Science and Applications (4ICSSC) and Polish Conference on Crystal Growth (7PCCG) ; (16-20.05.2004 ; Zakopane-Kościelisko, Poland)
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Abstrakty
EN
Measurements of the quadratic electrooptic coefficient g₁₂₁₂ of ammonium dihydrogen phosphate (ADP) were made. The coefficient g* = g₁₁₁₁ - g₂₂₁₁ - 2g₁₂₁₂ related to the anisotropy of electrooptic effect is determined. The value obtained for the coefficient is g*= -15.8x10⁻²⁰ m⁻² V⁻². This shows that the anisotropy of quadratic electrooptic effect in ADP is stronger than that estimated previously for potassium dihydrogen phosphate.
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autor
  • Institute of Physics, Technical University of Łódź, 219 Wólczańska Str., 93-005, Łódź, Poland
autor
  • Institute of Physics, Technical University of Łódź, 219 Wólczańska Str., 93-005, Łódź, Poland
  • Institute of Physics, Technical University of Łódź, 219 Wólczańska Str., 93-005, Łódź, Poland
  • Institute of Physics, Technical University of Łódź, 219 Wólczańska Str., 93-005, Łódź, Poland
Bibliografia
  • 1. J.F. Nye, Physical Properties of Crystals. Their Representation by Tensors and Matrices, Clarendon Press, Oxford, 1957.
  • 2. S. Bhagavantam, Crystal Symmetry and Physical Properties, Academic Press, London-New York, 1966.
  • 3. A. Yariv and P. Yeh, Optical Waves in Crystals, Wiley, New York, 1984.
  • 4. J.D. Zook, D. Chen, and G.N. Otto, “Temperature dependence and model of the electro-optic effect in LiNbO3”, Appl. Phys. Lett. 11, 159-161 (1967).
  • 5. M. DiDomenico Jr. and S. Wemple, “Oxygen-octahedra ferroelectrics. I. Theory of electro-optical and nonlinear optical effects”, J. Appl. Phys. 40, 720-734 (1969).
  • 6. A.A. Berezhnoi, “On the nature of anisotropy of optical properties of lithium niobate and lithium tantalate crystals”, Opt. Spectrosc. 82, 84-93 (1997).
  • 7. M.J. Gunning, R.E. Raab, and W. Kucharczyk, “Magnitude and nature of the quadratic electro-optic effect in potassium dihydrogen phosphate and ammonium dihydrogen phosphate crystals”, J. Opt. Soc. Amer. B18, 1092-1098 (2001).
  • 8. M. Izdebski, W. Kucharczyk, and R.E. Raab, “On relationships between electro-optic coefficients for impermeability and nonlinear electric susceptibilities”, J. Opt. A: Pure Appl. Opt. 6, 421-425 (2004).
  • 9. Landolt-Börnstein, Numerical Data and Functional Relationships in Science and Technology, New Series, Group III, Vol. 11, edited by K.H. Hellwege and A.M. Hellwege, Springer, Berlin, 1979; see also Vol. 18, 1984.
  • 10. M. Izdebski, W. Kucharczyk, and R.E. Raab, .Analysis of accuracy of measurement of quadratic electro-optic coefficients in uniaxial crystals: a case study of KDP., J. Opt. Soc. Amer. A19, 1417.1421 (2002).
  • 11. M. Izdebski, W. Kucharczyk, and R.E. Raab, “Application of the Jones calculus for a modulated double-refracted light beam propagating in a homogenous and non-depolarizing electro-optic uniaxial crystal”, J. Opt. Soc. Amer. A21, 132-139 (2004).
  • 12. R. Ledzion, K. Bondarczuk, and W. Kucharczyk, “Temperature dependence of the quadratic electrooptic effect and estimation of antipolarization of ADP”, Cryst. Res. Technol. 39, 161-164 (2004).
  • 13. W. Kucharczyk, “A bond-charge calculation of the quadratic electro-optic effect in LiF”, J. Phys. C: Solid State Phys. 20, 1875-1880 (1987).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BWA2-0010-0033
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