Enhanced broadband near-infrared luminescence from Pr 3+ -doped tellurite glass with silver nanoparticles
暂无分享,去创建一个
Pan Cheng | Yaxun Zhou | Minghan Zhou | Yaxun Zhou | Xiue Su | Zizhong Zhou | P. Cheng | Gaobo Yang | Gaobo Yang | Xiu-e Su | Ming-han Zhou | Zi-zhong Zhou
[1] G. Jose,et al. Application of a modified Judd–Ofelt theory to Pr3+ doped phosphate glasses and the evaluation of radiative properties , 2003 .
[2] B. C. Jamalaiah,et al. Application of modified Judd–Ofelt theory and the evaluation of radiative properties of Pr3 +-doped lead telluroborate glasses for laser applications , 2013 .
[3] V. Zhdanov,et al. Novel aspects of Ostwald ripening of supported metal nanoparticles , 2012 .
[4] B. G. Wybourne,et al. Spectral Intensities of the Trivalent Lanthanides and Actinides in Solution. I. Pr3+, Nd3+, Er3+, Tm3+, and Yb3+ , 1965 .
[5] K. Linganna,et al. NIR fluorescence spectroscopic investigations of Er3+-ions doped borate based tellurium calcium zinc niobium oxide glasses , 2015 .
[6] M. Mahdi,et al. Concentration dependent structural, thermal, and optical features of Pr3+-doped multicomponent tellurite glasses , 2016 .
[7] D. Mccumber,et al. Theory of Phonon-Terminated Optical Masers , 1964 .
[8] Oscar L. Malta,et al. Theoretical analysis of the fluorescence yield of rare earth ions in glasses containing small metallic particles , 1990 .
[9] W. Jin,et al. Superbroadband near-IR photoluminescence from Pr3+-doped fluorotellurite glasses. , 2012, Optics express.
[10] A. Kaminskii,et al. Dependence of the Line Strength of f–f Transitions on the Manifold Energy. II. Analysis of Pr3+ in KPrP4O12 , 1990 .
[11] V. Anjos,et al. Effect of Ag nanoparticles on the radiative properties of tellurite glasses doped with Er3+, Yb3+ and Tm3+ ions , 2014 .
[12] E. Pun,et al. Silver nanoparticles enhanced multichannel transition luminescence of Pr3+ in heavy metal germanium tellurite glasses , 2015 .
[13] P. Goldner,et al. Application of standard and modified Judd–Ofelt theories to a praseodymium‐doped fluorozirconate glass , 1996 .
[14] R. Peacock. The intensities of lanthanide f ↔ f transitions , 1975 .
[15] L. C. Barbosa,et al. Spectroscopic properties of Ho3+, Tm3+, and Ho3+/Tm3+ doped tellurite glasses for fiber laser applications , 2014, Photonics West - Lasers and Applications in Science and Engineering.
[16] Md. Rahim Sahar,et al. Spectroscopic investigation and Judd–Ofelt analysis of silver nanoparticles embedded Er3+-doped tellurite glass , 2015 .
[17] G. S. Murugan,et al. Tellurite glasses for ultrabroadband fiber Raman amplifiers , 2005 .
[18] W. Barnes,et al. Surface plasmon subwavelength optics , 2003, Nature.
[19] H. M. Crosswhite,et al. Energy level structure and transition probabilities in the spectra of the trivalent lanthanides in LaF , 1978 .
[20] G. Jose,et al. Judd–Ofelt intensity parameters and laser analysis of Pr3+ doped phosphate glasses sensitized by Mn2+ ions , 2000 .
[21] J. Qiu,et al. Enhancement of Pr3+ luminescence in TeO2–ZnO–Nb2O5–MoO3 glasses containing silver nanoparticles , 2009 .
[22] P. Moulton. Spectroscopic and laser characteristics of Ti:Al2O3 , 1986 .
[23] Paolo Mazzoldi,et al. Metal Nanocluster Composite Glasses , 2000 .
[24] Alessandro Chiasera,et al. Mechanisms of Ag to Er energy transfer in silicate glasses: A photoluminescence study , 2007 .
[25] G. Rao,et al. Effect of heat treatment on optical, dielectric and mechanical properties of silver nanoparticle embedded CaOCaF2P2O5 glass , 2015 .
[26] Hatun Cinkaya,et al. Spectroscopic investigation of zinc tellurite glasses doped with Yb(3+) and Er(3+) ions. , 2016, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[27] S. Ghoshal,et al. Prominent spectral features of Sm3+ ion in disordered zinc tellurite glass , 2016 .
[28] A. S. Camargo,et al. Enhanced VIS and NIR emissions of Pr3+ ions in TZYN glasses containing silver ions and nanoparticles , 2017 .
[29] Robert W. Tkach. Scaling optical communications for the next decade and beyond , 2010 .
[30] M. Dousti. Enhanced luminescence properties of Nd3+ doped boro-tellurite glasses via silver additive , 2017 .
[31] Z. Mazurak,et al. The influence of Pr3+ content on luminescence and optical behavior of TeO2–WO3–PbO–Lu2O3 glass , 2015 .
[32] N. Veeraiah,et al. Luminescence properties of Pr3+ doped Li2O–MO–B2O3 glasses , 2015 .
[33] B. Park,et al. 1.6 μm emission from Pr3+: (3F3,3F4)→3H4 transition in Pr3+- and Pr3+/Er3+-doped selenide glasses , 2001 .
[34] Md. Rahim Sahar,et al. Gold nanoparticles assisted surface enhanced Raman scattering and luminescence of Er3+ doped zinc-sodium tellurite glass , 2015 .
[35] Javier Aizpurua,et al. Metallic nanoparticle arrays: a common substrate for both surface-enhanced Raman scattering and surface-enhanced infrared absorption. , 2008, ACS nano.
[36] Junjie Zhang,et al. An efficient 2.0 μm emission of Er3+/Ho3+ co-doped lead silicate glass , 2017 .
[37] C. K. Jayasankar,et al. Luminescence studies on Er3+ -doped zincfluorophosphate glasses for 1.53 μm laser applications , 2017 .
[38] G. Righini,et al. Silver to erbium energy transfer in phosphate glasses , 2007 .
[39] Marcin Kochanowicz,et al. Influence of BaF2 and activator concentration on broadband near-infrared luminescence of Pr3+ ions in gallo-germanate glasses. , 2016, Optics express.
[40] Fengqiu Wang,et al. All-Fiber Passively Q-Switched Laser Based on Tm3+-Doped Tellurite Fiber , 2015, IEEE Photonics Technology Letters.
[41] K. Jankowski,et al. Electron correlation effects on transition probabilities of LaCl3 : Pr3+ , 1979 .
[42] A. Herrera,et al. Effect of gold nanoparticles in broadband near-infrared emission of Pr3+ doped B2O3–PbO–Bi2O3–GeO2 glass , 2017 .
[43] A. Herrera,et al. Multichannel emission from Pr3+ doped heavy-metal oxide glass B2O3–PbO–GeO2–Bi2O3 for broadband signal amplification , 2016 .
[44] A. Bumajdad,et al. Understanding the superior photocatalytic activity of noble metals modified titania under UV and visible light irradiation. , 2014, Physical chemistry chemical physics : PCCP.
[45] Yasutake Ohishi,et al. Higher nonlinear indices, Raman gain coefficients, and bandwidths in the TeO2–ZnO–Nb2O5–MoO3 quaternary glass system , 2007 .
[46] Lianjun Wang,et al. Near‐Infrared Broadband Photoluminescence of Bismuth‐Doped Zeolite‐Derived Silica Glass Prepared by SPS , 2016 .
[47] M. Kochanowicz,et al. NIR to visible upconversion in double – clad optical fiber co-doped with Yb 3+ /Ho 3+ , 2013, CLEO 2013.
[48] B. Champagnon,et al. Raman spectroscopy studies of Er3+-doped zinc tellurite glasses , 2005 .
[49] I. Soltani,et al. Thermal, structural and optical properties of Er3 + doped phosphate glasses containing silver nanoparticles , 2016 .
[50] A Yu Laptev,et al. Lead-related centers of UV, visible and near-IR luminescence in SiO 2 glass , 2016 .
[51] E. Snitzer,et al. Pr(3+)-doped fluoride fiber amplifier operating at 1.31 microm. , 1991, Optics letters.
[53] Y. C. Ratnakaram,et al. Fluorescence characteristics of Nd3+ doped multicomponent fluoro-phosphate glasses for potential solid-state laser applications , 2016 .
[54] Paolo Mazzoldi,et al. Investigation of the role of silver on spectroscopic features of Er3+-activated Ag-exchanged silicate and phosphate glasses , 2005 .
[55] L. Barbosa,et al. Near-IR emission in Pr3+single doped and tunable near-IR emission in Pr3+/Yb3+ codoped tellurite tungstate glasses for broadband optical amplifiers , 2014 .
[56] Daqin Chen. Near-infrared long-lasting phosphorescence in transparent glass ceramics embedding Cr3+-doped LiGa5O8 nanocrystals , 2014 .
[57] Ken Tanizawa,et al. Broadband silicon photonics 8 × 8 switch based on double-Mach-Zehnder element switches. , 2017, Optics express.
[58] M. Abareshi,et al. Effects of silver nanoparticles on the thermal properties of polyethylene matrix nanocomposites , 2017, Journal of Thermal Analysis and Calorimetry.
[59] M. J. Weber,et al. Probabilities for Radiative and Nonradiative Decay of Er 3 + in La F 3 , 1967 .
[60] Zhengwen Yang,et al. Spectroscopic properties of Tm3+/Er3+/Yb3+ co-doped oxyfluorogermanate glasses containing silver nanoparticles , 2014 .
[61] Cid B. de Araújo,et al. Influence of metallic nanoparticles on electric-dipole and magnetic-dipole transitions of Eu3+ doped germanate glasses , 2010 .
[62] A. S. Camargo,et al. Luminescence quenching versus enhancement in WO3-NaPO3 glasses doped with trivalent rare earth ions and containing silver nanoparticles , 2016 .
[63] E. Pun,et al. Broadband fluorescence emission of Eu 3+ doped germanotellurite glasses for fiber-based irradiation light sources , 2013 .
[64] Yin Cheng,et al. Ni2+-doped new silicate glass-ceramics for broadband near infrared luminescence , 2016 .