CaSnO :Bi blue-emitting phosphor was synthesized using a high-temperature solid-state reaction method in air. The crystal structures and luminescence properties were investigated. A broad emission band peaking at ~448 nm upon excitation at 262 and 308 nm was observed in the range 330-680 nm at room temperature due to P → S transition of the Bi ion. The chromaticity coordinate was (0.1786, 0.1665). The optimal Bi ion concentration was ~0.6 mol% in CaSnO :Bi phosphor. The emission spectrum of CaSnO :Bi phosphor showed a blue-shift with increasing temperature from 50 to 300 K due to the influence of temperature on the electron transition of the Bi ion. The emission intensity of CaSnO :Bi phosphor may be increased ~1.45 times by co-doping Li ions as a charge compensator and fluxing agent. The luminescence mechanism is explained by a configurational coordinate diagram of Bi ion in CaSnO :Bi phosphor.
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http://dx.doi.org/10.1002/bio.3268 | DOI Listing |
Molecules
November 2022
School of Rare Earths, University of Science and Technology of China, Hefei 230026, China.
Non-rare earth doped oxide phosphors with far-red emission have become one of the hot spots of current research due to their low price and excellent physicochemical stability as the red component in white light-emitting diodes (W-LEDs) and plant growth. Herein, we report novel Mn-doped LaCaSnO and LaMgSnO phosphors by high-temperature solid-phase synthesis and analyzed their crystal structures by XRD and Rietveld refinement. Their excitation spectra consist of two distinct excitation bands with the dominant excitation range from 250 to 450 nm, indicating that they possess strong absorption of near-ultraviolet light.
View Article and Find Full Text PDFSpectrochim Acta A Mol Biomol Spectrosc
December 2020
Hunan Provincial Key Laboratory of Fine Ceramics and Powder Materials, School of Materials and Environmental Engineering, Hunan University of Humanities, Science and Technology, Loudi 417000, China.
CaSnO: Pr phosphor for new application in temperature sensing was investigated. CaSnO: 0.3%Pr had distorted orthorhombic perovskite structure and Pr occupied Ca sites due to their similar ionic radii.
View Article and Find Full Text PDFRSC Adv
October 2019
School of Materials Science and Engineering, Changchun University of Science and Technology Changchun 130022 Jilin China
Persistent luminescence (PPL) materials have gained lots of attention and have been widely used in traffic signs, displays, medical diagnosis and architectural decoration. Single ion doped PPL materials with stable emission are excellent for practical applications, but it is difficult to cover the entire wavelength range. Here, a new cyan long-lasting phosphor CaSnO:Lu was successfully synthesized at 1200 °C by the conventional high temperature solid state method.
View Article and Find Full Text PDFLuminescence
September 2017
College of Mathematics and Physics, Jinggangshan University, Ji'an, China.
CaSnO :Bi blue-emitting phosphor was synthesized using a high-temperature solid-state reaction method in air. The crystal structures and luminescence properties were investigated. A broad emission band peaking at ~448 nm upon excitation at 262 and 308 nm was observed in the range 330-680 nm at room temperature due to P → S transition of the Bi ion.
View Article and Find Full Text PDFAppl Radiat Isot
May 2015
Celal Bayar University, Faculty of Arts and Sciences, Department of Physics, Muradiye-Manisa, Turkey; Physics Department, Jazan University, P.O. Box 114, 45142 Jazan, Kingdom of Saudi Arabia. Electronic address:
The present study describes cathodoluminescence (CL) properties of CaSnO3 phosphors doped with Eu(3+), Tb(3+) and Dy(3+) synthesized by a solid-state method. X-ray diffraction (XRD) patterns confirm that CaSnO3 sintered at 1200°C exhibits orthorhombic structure. The evidence and rationale for two strong broad emission bands appeared at 360 and 780nm for undoped CaSnO3 are presented.
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