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Optimization of red phosphor for plasma display panel by the combinatorial chemistry method

Published online by Cambridge University Press:  31 January 2011

Kee-Sun Sohn*
Affiliation:
Department of Material Science & Metallurgical Engineering, Sunchon National University, 540-742 Sunchon, Chonam, Korea
Chang Hae Kim
Affiliation:
Department of Chemistry, Korea Advanced Institute of Science and Technology, 305-701 Taejon, Korea
Joon Taik Park
Affiliation:
Department of Chemistry, Korea Advanced Institute of Science and Technology, 305-701 Taejon, Korea
Hee Dong Park
Affiliation:
Display Phosphor Group, Korea Research Institute of Chemical Technology, 305-600 Taejon, Korea
*
a)Address all correspondence to this author.kssohn@sunchon.ac.kr
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Abstract

Combinatorial chemistry was applied to the optimization of red phosphors used for plasma display panels. Quaternary and ternary combinatorial libraries were developed for (Y, Gd, Lu, Sc)BO3 and (Y, Gd)(BO3 PO4) systems. Our combinatorial chemistry system consists of solution-based combinatorial synthesis and characterization, enabling the swift scanning of luminance and of Commission Internationale de l'Eclairage (CIE) chromaticity under vacuum ultraviolet light excitation. As a consequence of the combinatorial approach, several new candidates were found to show higher luminance than the commercially available red phosphor for plasma display panels.

Type
Articles
Copyright
Copyright © Materials Research Society 2002

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References

1.Kojima, T., in Phosphor Handbook, edited by Shionoya, S. and Yen, W.M. (CRC Press, Boca Raton, FL, 2000), p. 623.Google Scholar
2.McFarland, E.W. and Weinberg, W.H., Tibtech. 17, 107 (1999).CrossRefGoogle Scholar
3.Senkan, S.M., Nature 394, 350 (1998).CrossRefGoogle Scholar
4.Xiang, X-D., Ann. Rev. Mater. Sci. 29, 149 (1999).CrossRefGoogle Scholar
5.Sun, X-D., Biotech. Bioeng. 61, 193 (1998/1999).3.0.CO;2-8>CrossRefGoogle Scholar
6.Danielson, E., Golden, J.H., McFarland, E.W., Reaves, C.M., Weinberg, W.H., and Wu, X.D., Nature 389, 944 (1997).CrossRefGoogle Scholar
7.Danielson, E., Devenney, M., Giaquinta, D.M., Golden, J.H., Haushalter, R.C., Mcfarland, E.W., Poojary, D.M., Reaves, C.M., Weinberg, W.H., and Wu, X.D., Science 279, 837 (1998).CrossRefGoogle Scholar
8.Sun, X-D., Wang, K-A., Yoo, Y., Wallace-Freedman, W.G., Gao, C., Xiang, X-D., and Schultz, P.G., Adv. Mater. 9, 1046 (1997).CrossRefGoogle Scholar
9.Sohn, K-S., Park, E.S., Kim, C.H., and Park, H.D., J. Electrochem. Soc. 147, 4132 (2000).Google Scholar
10.Narisada, K. and Kanaya, S., in Phosphor Handbook, edited by Shionoya, S. and Yen, W.M. (CRC Press, Boca Raton, FL, 2000), p. 802.Google Scholar
11.Newnham, R.E., Redman, M.J., and Santoro, R.P., J. Am. Ceram. Soc. 46, 253 (1963).CrossRefGoogle Scholar
12.Sohn, K-S., Choi, Y.G., Choi, Y.Y., and Park, H.D., J. Electrochem. Soc. 147, 3552 (2000).CrossRefGoogle Scholar