Controllable Phase Transformation and Mid-infrared Emission from Er3+-Doped Hexagonal-/Cubic-NaYF4 Nanocrystals
暂无分享,去创建一个
Jianrong Qiu | Quanlan Xiao | Dandan Yang | Dongdan Chen | G. Dong | J. Qiu | Huilin He | Quan‐lan Xiao | Dandan Yang | Guoping Dong | Huilin He | Qiwen Pan | Qiwen Pan | Dongdan Chen
[1] Jun Lin,et al. YOF nano/micro-crystals: morphology controlled hydrothermal synthesis and luminescence properties , 2014 .
[2] K. Akimoto,et al. Upconversion properties in hexagonal-phase NaYF4:Er3+/NaYF4 nanocrystals by off-resonant excitation , 2013 .
[3] Jacek Swiderski,et al. Electrooptically Q-switched mid-infrared Er:YAG laser for medical applications. , 2004, Optics express.
[4] T. Wágner,et al. Intense near-infrared and midinfrared luminescence from the Dy3+-doped GeSe2-Ga2Se3-MI (M=K, Cs, Ag) chalcohalide glasses at 1.32, 1.73, and 2.67 μm , 2011 .
[5] M. Peng,et al. Morphology and phase control of fluorides nanocrystals activated by lanthanides with two-model luminescence properties. , 2012, Nanoscale.
[6] Baojiu Chen,et al. Concentration effect of Nd3+ ion on the spectroscopic properties of Er3+/Nd3+ co-doped LiYF4 single crystal , 2014 .
[7] Zhongmin Yang,et al. Phase Transformation and Intense 2.7 μm Emission from Er3+ Doped YF3/YOF Submicron-crystals , 2013, Scientific Reports.
[8] Antoine Godard,et al. Infrared (2–12 μm) solid-state laser sources: a review , 2007 .
[9] Junjie Zhang,et al. Er 3+ doped germanate-tellurite glass for mid-infrared 2.7 μm fiber laser material , 2016 .
[10] Slawomir Sujecki,et al. Progress in rare-earth-doped mid-infrared fiber lasers. , 2010, Optics express.
[11] Robert C. Wolpert,et al. A Review of the , 1985 .
[12] Heping Zeng,et al. Optical gain at 1550 nm from colloidal solution of Er3+-Yb3+ codoped NaYF4 nanocubes. , 2009, Optics express.
[13] S. Fischer,et al. Stark level analysis of the spectral line shape of electronic transitions in rare earth ions embedded in host crystals , 2013 .
[14] Weibo Chen,et al. Lanthanide doped nanoparticles as remote sensors for magnetic fields. , 2014, Nanoscale.
[15] Pu Zhou,et al. Review on recent progress on mid-infrared fiber lasers , 2012 .
[16] K. Vodopyanov,et al. Solid-state mid-infrared laser sources , 2003 .
[17] D. Saurel,et al. Er(3+)-doped nanoparticles for optical detection of magnetic field. , 2009, Nano letters.
[18] M. Secu,et al. Up-conversion luminescence of Er3 +/Yb3 + co-doped LiYF4 nanocrystals in sol–gel derived oxyfluoride glass-ceramics , 2015 .
[19] C. S. Lim,et al. Simultaneous phase and size control of upconversion nanocrystals through lanthanide doping , 2010, Nature.
[20] Renren Deng,et al. Tuning upconversion through energy migration in core-shell nanoparticles. , 2011, Nature materials.
[21] Lili Wang,et al. Controlled synthesis and luminescence properties from cubic to hexagonal NaYF4:Ln3+ (Ln = Eu and Yb/Tm) microcrystals , 2009 .
[22] M. Kanskar,et al. High power diode-pumped 2.7-μm Er3+:Y2O3 laser with nearly quantum defect-limited efficiency. , 2011, Optics express.
[23] Lili Hu,et al. Effect of fluorine ions on 2.7 μm emission in Er3+/Nd(3+)-codoped fluorotellurite glass. , 2012, The journal of physical chemistry. A.
[24] D. Zhao,et al. Shape, size, and phase-controlled rare-Earth fluoride nanocrystals with optical up-conversion properties. , 2009, Chemistry.
[25] Zhijun Ma,et al. 2.7 μm emission in Er3+:CaF2 nanocrystals embedded oxyfluoride glass ceramics. , 2013, Optics letters.
[26] Xiaojun Wang,et al. The dependence of persistent phosphorescence on annealing temperatures in CaTiO3:Pr3+ nanoparticles prepared by a coprecipitation technique , 2008 .
[27] Jing Chen,et al. Controllable synthesis of NaYF(4) : Yb,Er upconversion nanophosphors and their application to in vivo imaging of Caenorhabditis elegans. , 2011, Journal of materials chemistry.
[28] Hongwei Song,et al. Electronic transition and energy transfer processes in LaPO4-Ce3+/Tb3+ nanowires. , 2005, The journal of physical chemistry. B.
[29] D. Sun,et al. Controllable synthesis and upconversion luminescenceof NaYF 4 :Yb 3+ , Er 3+ nanocrystals , 2015 .
[30] Junjie Zhang,et al. 2.7 μm emissions in Er3+: NaYF4 embedded aluminosilicate glass ceramics , 2016 .
[31] G. Demopoulos,et al. Annealing-induced ultra-efficient NIR-to-VIS upconversion of nano-/micro-scale α and β NaYF4:Er3+,Yb3+ crystals , 2013 .
[32] G. Dong,et al. Simultaneous luminescence modulation and magnetic field detection via magneto-optical response of Eu3+-doped NaGdF4 nanocrystals , 2015 .
[33] T. Wakasugi,et al. Mid-infrared emissions from Ho3+ in Ga2S3-GeS2-Sb2S3 glass , 2012 .
[34] Xiaogang Liu,et al. Recent Advances in the Chemistry of Lanthanide‐Doped Upconversion Nanocrystals , 2009 .
[35] G. Dong,et al. Controllable synthesis of Zn2GeO4:Eu nanocrystals with multi-color emission for white light-emitting diodes , 2015 .
[36] K. Krämer,et al. Origin of the High Upconversion Green Luminescence Efficiency in β-NaYF4:2%Er3+,20%Yb3+ , 2011 .
[37] Zhongmin Yang,et al. 2.7 μm Emission from Transparent Er3+,Tm3+ Codoped Yttrium Aluminum Garnet (Y3Al5O12) Nanocrystals–Tellurate Glass Composites by Novel Comelting Technology , 2012 .
[38] Ying Tian,et al. Enhanced emission of 2.7 μm pumped by laser diode from Er3+/Pr(3+)-codoped germanate glasses. , 2011, Optics letters.
[39] Helmut Schäfer,et al. Synthesis and Optical Properties of KYF4/Yb, Er Nanocrystals, and their Surface Modification with Undoped KYF4 , 2008 .
[40] Yan Wang,et al. Influence of surfactants on the morphology, upconversion emission, and magnetic properties of β-NaGdF4:Yb3+,Ln3+ (Ln = Er, Tm, Ho). , 2013, Dalton transactions.
[41] Baojiu Chen,et al. Optical Spectra and Gain Properties of Ho3+/Pr3+ Co-doped LiYF4 Crystal , 2014 .
[42] Junjie Zhang,et al. Mid-infrared fluorescence, energy transfer process and rate equation analysis in Er3+ doped germanate glass , 2014, Scientific Reports.