Title :
Red, Green, and Blue Light Through Cooperative Up-Conversion in Sol-Gel Thin Films Made With Yb0.80La0.15Tb0.05F3 and Yb0.80La0.15Eu0.05F3 Nanoparticles
Author :
Sivakumar, Sri ; Van Veggel, Frank C J M
Author_Institution :
Dept. of Chem., Victoria Univ., BC
fDate :
6/1/2007 12:00:00 AM
Abstract :
Silica and zirconium dioxide sol-gel thin films made with Yb0.80La0.15Tb0.05F3 or Yb 0.80La0.15Eu0.05F3 nanoparticles are reported. Bright blue (413 and 435 nm), green (545 nm), and red (585 and 625 nm) emissions are produced from Tb3+ ions through cooperative up-conversion of 980 nm light. Similarly, red (591 and 612 nm) emission is generated from Eu3+ ions. These up-convertors may find use in white light sources. The cooperative up-conversion of Yb3+-Tb3+ ions is more efficient than of Yb3+-Eu3+ ions because the efficiency of energy transfer from excited Yb3+ ions to a Tb 3+ ion (0.37) is more than two-times higher than of excited Yb3+ ions to a Eu3+ ion (0.15), as estimated from the lifetime of excited Yb3+ ion. The estimated quantum yields of both Tb3+ ion and Eu3+ ion emissions are on the order of 40%, and hence are not the cause of the difference in efficiency. This approach does not work for Sm3+, Pr3+ , and Dy3+. Incorporation of the respective Ln3+ ions in nanoparticles is crucial, as controls, in which the various Ln3+ ions are incorporated directly into the sol-gel, that do not show cooperative up-conversion
Keywords :
display devices; lanthanum compounds; nanoparticles; optical materials; sol-gel processing; thin films; ytterbium compounds; 413 nm; 435 nm; 545 nm; 585 nm; 591 nm; 612 nm; 625 nm; 980 nm; SiO2; Yb0.80La0.15Eu0.05F3; Yb0.80La0.15Tb0.05F3; blue light; cooperative up-conversion; green light; nanoparticles; quantum yields; red light; sol-gel thin films; white light sources; zirconium dioxide; Energy exchange; Ion emission; Life estimation; Lifetime estimation; Light sources; Nanoparticles; Silicon compounds; Transistors; Yield estimation; Zirconium; ${hbox{LaF}}_{3}$; Cooperative up-conversion; nanoparticles; sol-gel thin films;
Journal_Title :
Display Technology, Journal of
DOI :
10.1109/JDT.2007.896749