Vapor phase growth and properties of mixed layered Pb1-xCdxI2 semiconductors

Authors

  • O.V. Rybak Lviv Polytechnic National University, Lviv, Ukraine
  • M.V. Chekaylo Lviv Polytechnic National University, Lviv, Ukraine
  • N.T. Pokladok Lviv Polytechnic National University, Lviv, Ukraine

DOI:

https://doi.org/10.15330/pcss.23.2.311-316

Keywords:

Pb1-xCdxI2 crystals, vapour phase, solid solutions, polytype, X-ray diffraction study, absorption spectra

Abstract

Pb1-xCdxI2 crystals (x = 0.1; 0.9) have been obtained by crystallization from a vapour phase in a closed system at over-stoichiometric iodine vapour pressure. An alloy of CdI2 and PbI2 was used as a source of evaporation. As a result of X-ray diffraction studies, it has been found that the obtained crystals belong to 4H-polytype, the space symmetry group is P63mc. The lattice parameters and the unit cell volume of crystals have been determined: for Pb0.9Cd0.1I2 a = 4,529 Å, c = 13,96 Å, V = 247,9 Å3; for Pb0.1Cd0.9I2 a = 4.258 Å, c = 13.70 Å, V = 215.0 Å3. The morphology of Pb1-xCdxI2 solid solutions crystals has been studied by scanning electron microscopy. Grown light orange Pb0.9Cd0.1I2 crystals have the shape of plates and ribbons, the surface of which is sculpted by growth figures. The transparent mixed Pb0.1Cd0.9I2 crystals have been grown from the vapour phase only in the form of plates. The spectral dependences of the optical absorption of Pb1-xCdxI2 crystals at room temperature have been studied. The optical widths of the band gaps of the grown crystals have been determined from the absorption spectra using the Tauc relation.

References

A.P. Bukivskii, Y.P. Gnatenko, Y.P. Piryatinskii, R.V. Gamernyk, Nature of Radiative Recombination Processes in Layered Semiconductor PbCdI2 Nanostructural Scintillation Material, Journal of Luminescence 185, 83 (2017); https://doi.org/10.1016/j.jlumin.2016.12.054.

A.P. Bukivskii, Y.P. Gnatenko, Y.P. Piryatinski, I.V. Fesych, V.V. Lendel, V.M Tkach., P.M. Bukivskij, Nature of Radiative Recombination Processes in Layered Heterogeneous PbCdI2 Thick Films: Promising Scintillator Materials, Advances in Condensed Matter Physics 2018, 1 (2018); https://doi.org/10.1155/2018/2762369.

S.S. Novosad, I.M. Matviishin, I.S. Novosad, O.S. Novosad, Spectral and kinetic characteristics of CdI2 and CdI2:Pb scintillators, Journal of Applied Spectroscopy 75(6), 826 (2009); htpps:// doi.org/10.1007/s10812-009-9124-z.

S. Al Faify, M. Shkir, Facile one pot Synthesis of Novel pure and Cd Doped PbI2 Nanostructures for Electro-optic and Radiation Detection Applications, Optical Materials 88, 417 (2019); https://doi.org/10.1016/j.optmat.2018.11.054.

I.V. Kityk, O.V. Rybak, Ya.M. Bilyi, A. Putsek, Magnetoinduced phenomena of CHG in crystals PbI2, Ukrainian Journal of Physics 43(2), 245 (1998).

M. Ueta, H. Kanzaki, K. Kobayashi, E. Toyozawa, E. Hanamura, Excitonic Processes in Solids (Springer-Verlag, Berlin, 1986).

B. Kumar, N. Sinha, Micromorphology of pure and PbI2-doped CdI2 dendritic single crystals, Crystal Research and Technology 40(9), 887 (2005); https://doi.org/10.1002/crat.200410451.

O.V. Rybak, I.V. Kurilo, Mass Transport in the PbI2-I2 System, Inorganic Material 38(8), 854 (2002); https://doi.org/10.1023/A:1019795215165.

O.V. Rybak, I.V. Semkiv, M.V. Chekailo, Growth and properties of Cd-doped PbI2 crystals, Journal of nano- and electronic physics 12(1), 01019 (2020); https://doi.org/110.21272/jnep.12(1).01019.

P.A. Beckmann, A review of polytypism in lead iodide, Crystal Research and Technology 45(5), 455 (2010); https://doi.org/110.1002/crat.201000066.

G.C. Trigunayat, A survey of the phenomenon of polytypism in crystals, Solid State Ionics 48(1-2), 3 (1991); https://doi.org/10.1016/0167-2738(91)90200-U.

H. Kaur, Challenges in the Study of Polytypism in MX2 Compounds, Advances in Applied Science Research, 5(1), 259 (2014).

Information card for entry 9009138, Crystallography Open Database [Crystal structure information for CdI2] (2013); http://www.crystallography.net/cod/9009138/html.

Information card for entry 9009140, Crystallography Open Database [Crystal structure information for PbI2] (2016); http://www.crystallography.net/cod/9009140/html.

O.G. Kozlova, Morfologo-geneticheskii analiz kristallov (MGU Press, Moskva, 1991).

I.V. Kurilo, O.V. Rybak, Effect of Growth Conditions on the Morphology and Structural Perfection of Vapor-Grown PbI2 Crystals, Inorganic Material 38(3), 288 (2002); https://doi.org/10.1023/A:1014787220190.

D.Y. Lin, B.C. Guo, Z.Y. Dai, C.F. Lin, H.P. Hsu, PbI2 Single Crystal Growth and Its Optical Property Study, Crystals 9(11), 598 (2019); https://doi.org/10.3390/cryst9110589.

D. Sharma, P. Gaur, B.P. Malik, N. Singh, A. Gaur, Intensity Dependent Nonlinear Absorption in Direct and Indirect Band Gap Crystals under Nano and Picosecond Z-Scan, Optics and Photonics Journal 2(2), 98 (2012); https://doi.org/10.4236/opj.2012.22013.

Published

2022-06-13

How to Cite

Rybak, O., Chekaylo, M., & Pokladok, N. (2022). Vapor phase growth and properties of mixed layered Pb1-xCdxI2 semiconductors. Physics and Chemistry of Solid State, 23(2), 311–316. https://doi.org/10.15330/pcss.23.2.311-316

Issue

Section

Scientific articles (Physics)