Optical, scintillation, and dosimetric properties of undoped and Tb-doped CaYAlO4 single crystals
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[1] Yanan Li,et al. Sol-Gel Synthesis of CaYAlO 4:Tb Phosphors and Their Application in Detecting Nitroaromatic Compounds , 2022, SSRN Electronic Journal.
[2] D. Nakauchi,et al. Photoluminescence, scintillation, and dosimetric properties of Tb-doped Mg2SiO4 single crystals , 2022, Journal of Materials Science: Materials in Electronics.
[3] D. Nakauchi,et al. Dosimetric Properties of Ce-doped 25Li2O–10MgO–65SiO2 Glasses , 2022, Sensors and materials.
[4] D. Nakauchi,et al. Radio-photoluminescence Properties of Heavy-element-based Alkaline Phosphate Glasses and Their Application to X-ray Imaging , 2022, Sensors and materials.
[5] D. Nakauchi,et al. Optical and Optically Stimulated Luminescence Properties of Ce-doped CsCl–CaCl2–ZnCl2 Glasses , 2022, Sensors and materials.
[6] K. Katsumata,et al. Effects of kaolinite layer expansion and impurities on the solid-state reaction of kaolinite , 2021, RSC advances.
[7] D. Nakauchi,et al. Dosimetric properties of Tb-doped LiF/CaF2 eutectic composite , 2021, Journal of the Ceramic Society of Japan.
[8] D. Nakauchi,et al. Photoluminescence and Scintillation Properties of Tb:GdTaO4 Crystals , 2021, Sensors and materials.
[9] Y. Messaddeq,et al. Magneto-optical borogermanate glasses and fibers containing Tb3+ , 2021, Scientific Reports.
[10] D. Nakauchi,et al. Thermally stimulated luminescence properties of Tm-doped MgAl2O4 transparent ceramics , 2020, Optical Materials.
[11] Z. Chai,et al. Emergence of a Radical‐Stabilizing Metal–Organic Framework as a Radio‐photoluminescence Dosimeter , 2020, Angewandte Chemie.
[12] I. Kandarakis,et al. Luminescence Efficiency of Cadmium Tungstate (CdWO4) Single Crystal for Medical Imaging Applications , 2020, Crystals.
[13] Mingmei Wu,et al. Bright Green Emitting CaYAlO4:Tb3+,Ce3+ Phosphor: Energy Transfer and 3D‐Printing Artwork , 2020, Advanced Optical Materials.
[14] D. Nakauchi,et al. Dosimetric properties of Tb-doped MgAl2O4 single crystals , 2020, Japanese Journal of Applied Physics.
[15] D. Nakauchi,et al. Optical, scintillation, and dosimetric properties of Mn-doped MgAl2O4 single crystals , 2020, Journal of Materials Science: Materials in Electronics.
[16] C. Duan,et al. Site occupation and 4f → 5d transitions of Ce3+ ions at mixed Ca2+/Y3+ sites in CaYAlO4: Insights from first-principles calculations , 2019 .
[17] Xiaoyong Huang,et al. CaYAlO4:Mn4+,Mg2+: An efficient far-red-emitting phosphor for indoor plant growth LEDs , 2019, Journal of Alloys and Compounds.
[18] T. Yanagida,et al. Ionizing-radiation-induced storage-luminescence for dosimetric applications , 2019, Journal of Luminescence.
[19] N. Kawano,et al. Scintillation and TSL properties of Tb-doped NaPO3-Al(PO3)3 glasses , 2018, Radiation Measurements.
[20] J. Jeong,et al. Eu3+/2+ co-doping system induced by adjusting Al/Y ratio in Eu doped CaYAlO4: preparation, bond energy, site preference and 5D0–7F4 transition intensity , 2018, RSC advances.
[21] Mayeen Uddin Khandaker,et al. Studies of ionizing radiation shielding effectiveness of silica-based commercial glasses used in Bangladeshi dwellings , 2018 .
[22] T. Yanagida. Inorganic scintillating materials and scintillation detectors , 2018, Proceedings of the Japan Academy. Series B, Physical and biological sciences.
[23] N. Kawano,et al. Scintillation and dosimetric properties of Tb-doped LiCaAlF6 single crystals , 2018 .
[24] A. Bos. Thermoluminescence as a Research Tool to Investigate Luminescence Mechanisms , 2017, Materials.
[25] X. Tao,et al. The origin of coloration of CaGdAlO4 crystals and its effect on their physical properties , 2017 .
[26] D. Nakauchi,et al. Photochromism and Thermally and Optically Stimulated Luminescences of AlN Ceramic Plate for UV Sensing , 2016 .
[27] T. Yanagida. Ionizing radiation induced emission: Scintillation and storage-type luminescence , 2016 .
[28] Xiaodong Xu,et al. Generation of 33 fs pulses directly from a Kerr-lens mode-locked Yb:CaYAlO 4 laser , 2015 .
[29] Jun Lin,et al. Crystal-site engineering control for the reduction of Eu(3+) to Eu(2+) in CaYAlO4: structure refinement and tunable emission properties. , 2015, ACS applied materials & interfaces.
[30] S. Adachi,et al. Photoluminescence properties and energy-level diagrams in (Ce3+, Tb3+)-codoped KCl green phosphor , 2014 .
[31] S. Wada,et al. Float zone growth and spectral properties of Cr,Nd:CaYAlO4 single crystals , 2014 .
[32] E. Auffray,et al. Picosecond transient absorption rise time for ultrafast tagging of the interaction of ionizing radiation with scintillating crystals in high energy physics experiments , 2014 .
[33] T. Yanagida,et al. Development of X-ray-induced afterglow characterization system , 2014 .
[34] T. Yanagida,et al. Dosimeter properties of AlN , 2013 .
[35] Subrata Das,et al. Optical properties of Tb3+ doped KLaF4 in cubic and hexagonal symmetries , 2013 .
[36] Hideki Yagi,et al. Comparative study of ceramic and single crystal Ce:GAGG scintillator , 2013 .
[37] Z. Xia,et al. Luminescence properties and energy transfer investigations of BaAl2B2O7:Ce3+,Tb3+ phosphors , 2012 .
[38] Jun Lin,et al. Nanocrystalline CaYAlO4:Tb3+/Eu3+ as promising phosphors for full-color field emission displays. , 2012, Dalton transactions.
[39] S. McKeever. Optically stimulated luminescence: A brief overview , 2011 .
[40] Jun Xu,et al. Crystal growth and spectroscopic properties of Yb:CaYAlO4 single crystal , 2010 .
[41] X. Chen,et al. Polarized spectral properties of Nd3+ ions in CaYAlO4 crystal , 2010 .
[42] P. Du,et al. Photoluminescence properties of Y2O3:Tb3+ and YBO3:Tb3+ green phosphors synthesized by hydrothermal method , 2010 .
[43] I. Kandarakis,et al. A comparative study of the luminescence properties of LYSO:Ce, LSO:Ce, GSO:Ce and BGO single crystal scintillators for use in medical X-ray imaging. , 2008, Physica medica : PM : an international journal devoted to the applications of physics to medicine and biology : official journal of the Italian Association of Biomedical Physics.
[44] E. Yukihara,et al. Dosimetric characteristics of high sensitive Mg2SiO4:Tb solid TL detector , 2008 .
[45] A. Bos. Theory of thermoluminescence , 2006 .
[46] Xing Wu,et al. Study of single-crystal growth of Tm3+: CaYAlO4 by the floating-zone method , 2000 .
[47] Ryouhei Nakamura. Improvements in the X-ray characteristics of Gd2O2S:Pr ceramic scintillators , 1999 .
[48] Stephen W. S. McKeever,et al. Time-resolved optically stimulated luminescence from α-Al2O3:C , 1995 .
[49] P. Byszewski,et al. Dielectric constants and crystal structures of CaYAlO4, CaNdAlO4, and SrLaAlO4, and deviations from the oxide additivity rule , 1992 .
[50] J. Gasiot,et al. Optically Stimulated Luminescence Dosimetry , 1983 .