Near-IR emission from holmium–ytterbium co-doped alkali bismuth gallate and fluorophosphate fiber glass preforms

2009 ◽  
Vol 473 (1-2) ◽  
pp. 500-504 ◽  
Author(s):  
M. Alejandrina Martínez Gámez ◽  
A.V. Kir’yanov ◽  
J.L. Lucio M. ◽  
C. Wiechers ◽  
G.A. Kumar
Keyword(s):  
Near Ir ◽  
Author(s):  
Vicente Vargas ◽  
Anastasiya Sedova ◽  
Jesús Uriel Balderas ◽  
S. Carmona-Tellez ◽  
Iván Merlin ◽  
...  

2012 ◽  
Vol 407 (24) ◽  
pp. 4622-4626 ◽  
Author(s):  
Guoying Zhao ◽  
Ying Tian ◽  
Shikai Wang ◽  
Huiyan Fan ◽  
Lili Hu

Author(s):  
Dominik Dorosz ◽  
Jacek Zmojda ◽  
Marcin Kochanowicz

2011 ◽  
Vol 24 (6) ◽  
pp. 887-895 ◽  
Author(s):  
Miriam Uemi ◽  
Graziella E. Ronsein ◽  
Fernanda M. Prado ◽  
Flávia D. Motta ◽  
Sayuri Miyamoto ◽  
...  

2015 ◽  
Vol 51 (12) ◽  
pp. 2372-2375 ◽  
Author(s):  
Zhiyu Liao ◽  
Manuel Tropiano ◽  
Konstantins Mantulnikovs ◽  
Stephen Faulkner ◽  
Tom Vosch ◽  
...  

NIR imaging of lanthanide-coated silica particles where the photons used to generate the image unambiguously can be assigned to arise from lanthanide centred emission.


1993 ◽  
Vol 155 ◽  
pp. 386-386
Author(s):  
J.P. Harrington ◽  
K.J. Borkowski ◽  
W.P. Blair ◽  
J. Bregman

High-resolution images in [O III] λ5007 of the hydrogen-poor knots of Abell 30 reveal comet-like structures which may be indicative of interaction with the stellar wind. In the near IR, new, higher-resolution, K-band images show an equatorial ring of hot dust that corresponds closely to optical knots 2 and 4 of Jacoby and Ford, while their polar knots 1 and 3 show no comparable IR emission. Both the thermal IR emission and the heavy internal extinction of the central star demands an extremely dusty ejecta. Greenstein showed that the UV extinction curve is fit by amorphous carbon. Our comprehensive dust models consider both the UV extinction and the IR emission from a population of carbon grains. The thermal emission from larger grains produces the far IR emission, while the stochastic heating of very small grains to high temperatures is essential to explain the near IR flux. We are able to reproduce the shape of the near IR spectrum with an a−3.0 distribution of grain radii which extends down to a minimum grain radius of 8 Å.


2004 ◽  
Vol 30 (2) ◽  
pp. 191-205 ◽  
Author(s):  
Munenori Ryo ◽  
Yuji Wada ◽  
Tatsuya Okubo ◽  
Shozo Yanagida

2006 ◽  
Vol 15 (03) ◽  
pp. 369-379 ◽  
Author(s):  
NAM SEOB BAEK ◽  
YONG HEE KIM ◽  
HWAN KYU KIM

We present that the stable and inert Er(III) -encapsulated complexes based on naphthalene and anthracene ligands bearing a Fréchet aryl-ether dendron exhibit much stronger near-IR emission bands bands at 1530 nm, originated from the 4f–4f electronic transition of the first excited state (4 I 13/2) to the ground state (4 I 15/2) of the partially-filled 4f shell. A strong decrease in the fluorescence of G n-aryl ether dendron (n = 0 or 2) is accompanied by strongly increasing the fluorescence intensity of the luminescent anthracene or naphthalene ligand with the generation number of the dendrons. The strong decrease of fluorescence intensity of luminescent ligand such as naphthalene and anthracene units is accompanied by strongly increasing the near infrared (IR) emission of the Er 3+ ions in Er(III) -encapsulated complexes. It could be attributed to the efficient energy transfer process occurring between the aryl-ether dendron and anthracene moiety as well as between dendritic anthracene ligand and Er 3+ ion. Thus, the emission intensity of the lanthanide complexes, upon photoexcitation of aryl-ether dendrons at 290 nm, was dramatically enhanced with an increase in the generation number n of dendrons, due to the site-isolation and light-harvesting effects. In addition, Er 3+-[ G 2- An ]3(terpy) exhibits the stronger PL intensity than Er 3+-[ G 2- Na ]3(terpy)) by 2.5 times, upon photoexcitation of aryl-ether dendrons at 290 nm. It may be due to the fact that the anthracene ligand in Er 3+-[ G 2- An ]3(terpy)) has higher spectral overlap integral (J) value than the naphthalene ligand in Er 3+-[ G 2- Na ]3(terpy) by 1.5 times. Surprisingly, all Er(III) -cored dendrimer complexes have excellent thermal- and photo-stability as well as good solubility.


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