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Tytuł artykułu

Semi-organic nonlinear optical material: (((4-sulfonatophenyl)ammonio)oxy)zirconium for dielectric and photonics applications

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This article discusses the growth and characterization of (((4-sulfonatophenyl) ammonio)oxy) zirconium (SAOZ) single crystals. Sulphanilic acid incorporated zirconium oxychloride semi-organic single crystals have been synthesized by slow evaporation technique. From the X-ray studies, lattice parameters a = 7.31 Å, b = 7.51 Å, c = 13.92 Å, volume = 765 Å3 have been found and so the crystal has been identified as orthorhombic with non-centrosymmetric space group P212121. The powder XRD examination demonstrated the quality and high crystalline nature of the grown crystal. The presence of functional groups was confirmed by FT-IR technique. The chemical structure of the compound was established by 1H and 13C NMR spectra. The optical transmittance window and the low cutoff wavelength of SAOZ have been identified by UV-Vis-NIR studies. Photoluminescence studies showed a wide blue light emission. TG and DTA examinations were carried out to characterize the thermal behavior of the grown crystal. The mechanical strength of the grown crystal was analyzed by the Vickers microhardness test. The elemental analysis was done by EDAX. The dielectric response of the crystals was analyzed in the frequency range of 50 Hz to 5 MHz at various temperatures and the outcomes were discussed. The SHG efficiency was estimated in correlation with KDP by employing powder Kurtz method.
Wydawca
Rocznik
Strony
434--442
Opis fizyczny
Bibliogr. 28 poz., rys., tab.
Twórcy
autor
  • Raman Research Laboratory, Post Graduate and Research Department of Physics, Government Arts College, Tiruvannamalai, 606 603, Tamilnadu, India
autor
  • Raman Research Laboratory, Post Graduate and Research Department of Physics, Government Arts College, Tiruvannamalai, 606 603, Tamilnadu, India
autor
  • Raman Research Laboratory, Post Graduate and Research Department of Physics, Government Arts College, Tiruvannamalai, 606 603, Tamilnadu, India
Bibliografia
  • [1] LUO H., PAN J., LAR B., LI Y., LI X., HAN L., Inorg. Chem. Commun., 27 (2013), 79.
  • [2] WU Q., LI Y., CHEN H., JIANG K., LI H., ZHONG C., CHEN X., QIN J., Inorg. Chem. Commun., 34 (2013), 1.
  • [3] CAROLINE L.M., SANKAR R., INDIRANI R.M., VASUDEVAN S., Mater. Chem. Phys., 114 (2009), 490.
  • [4] JIANG M.-H., FANG Q., Adv. Mater., 11 (1999), 1147.
  • [5] HANUMANTHARAO R., KALAINATHAN S., Spectrochim. Acta A, 86 (2012), 80.
  • [6] ROSKAR M.J., CUNNINGHAM P., EWBANK M.D., MARCY H.O., VACHSS F.R., WARREN L.F., GAPPINGER R., BORWICK R., Pure Appl. Opt., 5 (1996), 667.
  • [7] LONG N.J., Angew. Chem. Int. Ed., 34 (1995), 21.
  • [8] ZYSS J., Molecular nonlinear optics: materials, physics and devices, Academic Press, Boston, 1994.
  • [9] MARDER S.R., SOHN J.E., in: STRUCK (Ed.), Materials for Nonlinear Optics, Academic Press, New York, 1991.
  • [10] DHANALAKSHMI B., PONNUSAMY S., MUTHAMIZHCHELVAN C., SUBHASHINI V., J. Cryst. Growth, 426 (2015), 103.
  • [11] SUBHASHINI V., PONNUSAMY S., MUTHAMIZHCHELVAN C., Spectrochim. Acta Part A, 87 (2012), 265.
  • [12] SUBHASHINI V., PONNUSAMY S., MUTHAMIZHCHELVAN C., J. Cryst. Growth, 363 (2013), 211.
  • [13] BOOPATHI K., RAJESH P., RAMASAMY P., Mater. Res. Bull., 479 (2012), 2299.
  • [14] VETRIVEL S., ANANDAN P., KANAGASABAPATHY K., BHATTACHARYA S., GOPINATH S., RAJASEKARAN R., Spectrochim. Acta Part A, 110 (2013), 317.
  • [15] BOOPATHI K., RAMASAMY P., BHAGAVANNARAYANA G., J. Cryst. Growth, (2014), 32.
  • [16] BOOPATHI K., RAJESH P., RAMASAMY P., J. Cryst. Growth, 345 (2012), 1.
  • [17] CHEMLA D.S., ZYSS J., Nonlinear Optical Properties of Organic Molecules and Crystals, Academic Press, New York, 1987.
  • [18] NEWMAN P.R., WARREN L.F., CUNNINGHAM P., CHANG T.Y COOPER., D.E., BURDGE G.L., Mater. Res. Soc. Proc., 173 (1990), 557.
  • [19] BADAN J., HIERLE R., PERIGAUD A., ZYSS J., ACS Symp. Series, 233 (1983), 81.
  • [20] GARITO A.F., SINGER K.D., Opt. Technol., 18 (1982), 59.
  • [21] DASTIDAR P., ROW T.N.G., PRASAD B.R., SUBRAMANIA C.K., Chem. Soc. Perkin Trans., 2 (12) (1993), 2419.
  • [22] MYTHILI P., KANAGASEKARAN T., KHAN S.A., KULRIYA P., GOPALAKRISHNANA K., Nucl. Instrum. Phys. Res. B, 266 (2008), 1754.
  • [23] VINOTH E., VETRIVEL S., MULLAI U., ARULJOTHI R., GNANAMOORTHY K., J. Adv. Phys., 7 (2018), 1.
  • [24] CAROLINE L.M., MANI G., KUMARESAN S., KUMAR M., SELVAN T.S., Rapid Commun., 9 – 10 (2015), 1239.
  • [25] SANGWAL K., Mater. Chem. Phys., 63 (2) (2000), 145.
  • [26] ONITSECH E.M., Mikroskopie, 95 (1956), 12.
  • [27] RAO K., SURENDER V., RANI S., Bull Mater. Sci. B, (2002), 25.
  • [28] KURTZ S.K., PERRY T.T., J. Appl. Phys., 39 (1968), 3798.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-bbf18b17-79fb-446e-b3e1-34000a3af454
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