Broadband 2.9 μm and 4.1 μm mid-infrared emission and energy transfer mechanisms in Ho3+/Yb3+ co-doped tellurite glasses
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[1] Xuelong Miao,et al. Ultra-broadband 4.1 μm mid-infrared emission of Ho3+ realized by the introduction of Tm3+ and Ce3+ , 2021 .
[2] Pengfei Wang,et al. Praseodymium mid-infrared emission in AlF3-based glass sensitized by ytterbium. , 2021, Optics express.
[3] Dawei Zhang,et al. Improved 2.0 μm luminescence by doping Ce3+ ions in Yb3+, Ho3+:YAG transparent ceramics , 2021, Infrared Physics & Technology.
[4] Pengfei Wang,et al. 3.5 μm emission in Er3+ doped fluoroindate glasses under 635 nm laser excitation , 2021 .
[5] Xuelong Miao,et al. Up-conversion and 2 µm mid-infrared emission effective enhancements in Ho3+/Yb3+ co-doped tellurite glass , 2021 .
[6] Pengfei Wang,et al. 3.9 μm emission in Nd3+ sensitized Ho3+ doped fluoroaluminate glasses , 2021, Journal of Alloys and Compounds.
[7] Xuelong Miao,et al. Effective enhancement on mid-infrared fluorescence emission of Ho3+/Yb3+ doped tellurite glass introduced Ag nanoparticles , 2021, Optical Materials.
[8] Hongwei Song,et al. Efficient enhancement of ~ 2.85 μm emission in Yb3+/Ho3+ co-doped Na5Y9F32 single crystal via Sm3+ deactivation , 2021 .
[9] Hongbo Zhang,et al. Preparation and Up-conversion Luminescence Properties of Er3+-Yb3+ doped NaBi(MoO4)2 Glass Ceramics , 2021 .
[10] Yaxun Zhou,et al. Broadband mid-infrared emission in Dy3+/Er3+ co-doped tellurite glass , 2021 .
[11] Weichao Wang,et al. Intense emission at 2.9 μm from Yb 3+ /Ho 3+ co‐doped TeO 2 –Ga 2 O 3 –ZnO tellurite glasses , 2021 .
[12] B. Eraiah,et al. Influence of Dy3+ions on the physical, thermal, structural and optical properties of lithium zinc phosphate glasses , 2021 .
[13] Y. Hang,et al. Enhanced 2.86 μm emission from a Ho,Pr:CaGdAlO4 crystal , 2020 .
[14] Chaomin Zhang,et al. Improvement of ultra-broadband near-infrared emission at around 1.0 µm in Nd3+-Er3+-Pr3+ tri-doped tellurite glasses , 2020 .
[15] Lizhong Sun,et al. Enhanced 1–5 μm near- and mid-infrared emission in Ho3+/Yb3+ codoped TeO2-ZnF2 oxyfluorotellurite glasses , 2020 .
[16] Shilong Zhao,et al. Er3+/Yb3+ co-doped TeO2–ZnO–ZnF2–La2O3 glass with a high fluorescence intensity ratio for an all-fiber temperature sensor , 2020 .
[17] Junjie Zhang,et al. Effect of Gd2O3 on luminescence properties of RE ions in germanium-tellurite glasses , 2020 .
[18] Pengfei Wang,et al. Infrared-laser and upconversion luminescence in Ho3+-Yb3+ codoped tellurite glass microsphere , 2020 .
[19] Chaomin Zhang,et al. Broadband mid-infrared 2.0 μm and 4.1 μm emission in Ho3+/Yb3+ co-doped tellurite-germanate glasses , 2020 .
[20] Y. Ju,et al. A room temperature operation mid-IR Fe:ZnSe laser pumped by Ho,Pr:LiLuF4 laser at 2.9-μm , 2019, Optics & Laser Technology.
[21] Yaxun Zhou,et al. Er3+/Pr3+/Nd3+ tri-doped tellurite glass for ultra-broadband amplification applications , 2019, Materials Letters.
[22] Yaxun Zhou,et al. 2.0 µm band emission enhancement and energy transfer in Ho3+/Yb3+/Er3+ tri-doped tellurite glasses , 2019, Journal of Luminescence.
[23] S. Ruan,et al. Efficient improvement of 2.7 μm luminescence of Er3+:oxyfluoride glass containing gallium by Yb3+ ions codoping , 2019, Journal of Rare Earths.
[24] Lizhong Sun,et al. Removal of hydroxyl routes enhancing 2.85 μm mid-infrared luminescence in oxyfluorotellurite glass with high ZnF2 content , 2018, Journal of Non-Crystalline Solids.
[25] Junjie Zhang,et al. Structural and fluorescence properties of Ho3+/Yb3+ doped germanosilicate glasses tailored by Lu2O3 , 2018 .
[26] Yaxun Zhou,et al. Pr3+/Er3+ co-doped tellurite glass with ultra-broadband near-infrared fluorescence emission , 2018 .
[27] Junjie Zhang,et al. Analysis of mid-infrared photoluminescence around 2.85 μm in Yb 3+ /Ho 3+ co-doped synthetic silica-germanate glass , 2018 .
[28] Junjie Zhang,et al. Mid-infrared fluorescence properties, structure and energy transfer around 2 µm in Tm 3+ /Ho 3+ co-doped tellurite glass , 2018 .
[29] Hongqiang Wang,et al. Optical spectroscopy studies of Ho/Yb co-doped yttrium lanthanum oxide transparent ceramics , 2017 .
[30] Junjie Zhang,et al. Low-hydroxy Dy 3+ /Nd 3+ co-doped fluoride glass for broadband 2.9 µm luminescence properties , 2017 .
[31] Junjie Zhang,et al. Highly Efficient 2.84- $\mu \text{m}$ Emission in Ho3+/Yb3+ Co-Doped Tellurite–Germanate Glass for Mid-Infrared Laser Materials , 2017, IEEE Photonics Technology Letters.
[32] Anping Yang,et al. Mid-infrared luminescence of Dy3+ ions in modified Ga-Sb-S chalcogenide glasses and fibers , 2017 .
[33] Zhongmin Yang,et al. Efficient 2.0 μm emission in Er3+/Ho3+ co-doped barium gallo-germanate glasses under different excitations for mid-infrared laser , 2016 .
[34] Yaxun Zhou,et al. Enhanced 2 µm fluorescence and thermal stability in Ho3+/Tm3+ codoped WO3 modified tellurite glasses , 2015 .
[35] Yin Hang,et al. Enhanced emission of 2.86 μm from diode-pumped Ho(3+)/Yb(3+)-codoped PbF(2) crystal. , 2015, Optics express.
[36] Wenjun Zhang,et al. Enhanced 2-5 μm emission in Ho³⁺/Yb³⁺ codoped halide modified transparent tellurite glasses. , 2015, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[37] Junjie Zhang,et al. Analysis on energy transfer process of Ho 3+ doped fluoroaluminate glass sensitized by Yb 3+ for mid-infrared 2.85 μm emission , 2014 .
[38] Wenjun Zhang,et al. Stability, glass forming ability and spectral properties of Ho/Yb co-doped TeO2–WO3–ZnX(X = O/F2/Cl2) system , 2014 .
[39] Zhiguang Zhou,et al. 2.85 µm fluorescence of Ho-doped water-free fluorotellurite glasses , 2014 .
[40] Lili Hu,et al. Broadband 2.84 μm luminescence properties and Judd-Ofelt analysis in Dy3+ doped ZrF4-BaF2-LaF3-AlF3-YF3 glass , 2012 .
[41] Danping Chen,et al. Spectroscopic properties and energy transfer in Yb3+–Ho3+ co-doped germanate glass emitting at 2.0 μm , 2011 .
[42] Ying Tian,et al. Observation of 2.7 μm emission from diode-pumped Er3+/Pr3+-codoped fluorophosphate glass. , 2011, Optics letters.
[43] Guonian Wang,et al. Investigation of 2.0 μm emission in Tm3+ and Ho3+ co-doped oxyfluoride tellurite glass , 2009 .
[44] D. Mccumber,et al. Theory of Phonon-Terminated Optical Masers , 1964 .