2014
DOI: 10.1016/j.jcrysgro.2013.11.086
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Ceramic material ZnSe(Te) fabricated by nanopowder technology: Fabrication, phase transformations and photoluminescence

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Cited by 7 publications
(3 citation statements)
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“…Competition between radiative and nonradiative recombination paths results in two strongly overlapping emission bands centered at 635 nm and 463 nm (Ryzhikov, 2001). In some cases, a narrow band peaking at 708 nm has been also detected (Kolesnikov et al, 2014). In our case, only the band at 626 nm is observed.…”
Section: Resultssupporting
confidence: 49%
“…Competition between radiative and nonradiative recombination paths results in two strongly overlapping emission bands centered at 635 nm and 463 nm (Ryzhikov, 2001). In some cases, a narrow band peaking at 708 nm has been also detected (Kolesnikov et al, 2014). In our case, only the band at 626 nm is observed.…”
Section: Resultssupporting
confidence: 49%
“…In 2008, dispersible ZnSe nanocrystals with a particle size of 3‐20 nm were synthesized via high‐energy ball milling of Zn and Se powders, with an impurity phase appearing after 20 hours of milling . In 2014, Kolesnikov et al reported that ZnSe nanopowders could also be synthesized via vapor deposition . In the same year, ZnSe powders were synthesized using a hydrothermal method with Zn and Se powders as raw materials, and the transmittance of the end hot‐pressing ZnSe ceramics exceeded 60% in the 11‐19 μm range .…”
Section: Introductionmentioning
confidence: 99%
“…11 In 2014, Kolesnikov et al reported that ZnSe nanopowders could also be synthesized via vapor deposition. 12 In the same year, ZnSe powders were synthesized using a hydrothermal method with Zn and Se powders as raw materials, and the transmittance of the end hot-pressing ZnSe ceramics exceeded 60% in the 11-19 μm range. 13 To purchase commercial high-purity ZnS and ZnSe powders as raw materials is another solution.…”
Section: Introductionmentioning
confidence: 99%