2SiO4:Dy3+ phosphors were prepared by a conventional solid-state reaction method. In this present study, thermoluminescence (TL) study of Dy3+  doped Sr2SiO4 phosphor is reported. The crystal structure of the prepared phosphor has an orthorhombic structurewith space groupPnma and average crystalline sizes could be calculated as 34 nm. The Fourier-Transform Infrared spectroscopy (FTIR) confirms the present elements in Sr2SiO4:Dy3+ phosphor and energy band gap were founded by optical absorption spectra.Thermoluminescence study was carried out for the phosphor which shows a single glow curve.The kinetic parameter has been calculated by using Chen’s glow curve method.

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Preparation of Sr2SiO4:Dy3+  Phosphors by Solid-State Reaction Method and their Thermoluminescence Properties

Durga Verma*, R. P. Patel**
* Department of Applied Physics, Faculty of Engineering and Technology, Shri Shankaracharya Group of Institutions, Chattisgarh, India.
** Department of Physics, Kalinga University, Atal Nagar, Raipur, Chattisgarh, India.
Periodicity:October - December'2019
DOI : https://doi.org/10.26634/jms.7.3.15398

Abstract

Sr2SiO4:Dy3+ phosphors were prepared by a conventional solid-state reaction method. In this present study, thermoluminescence (TL) study of Dy3+  doped Sr2SiO4 phosphor is reported. The crystal structure of the prepared phosphor has an orthorhombic structurewith space groupPnma and average crystalline sizes could be calculated as 34 nm. The Fourier-Transform Infrared spectroscopy (FTIR) confirms the present elements in Sr2SiO4:Dy3+ phosphor and energy band gap were founded by optical absorption spectra.Thermoluminescence study was carried out for the phosphor which shows a single glow curve.The kinetic parameter has been calculated by using Chen’s glow curve method.

Keywords

XRD, FTIR, Thermoluminescence, Nanocrystalline Materials

How to Cite this Article?

Verma, D., and Patel, R. P. (2019). Preparation of Sr2SiO4:Dy3+  Phosphors by Solid-State Reaction Method and their Thermoluminescence Properties. i-manager’s Journal on Material Science, 7(3), 1-7. https://doi.org/10.26634/jms.7.3.15398

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