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A combinatorial approach to the discovery and optimization of luminescent materials

Abstract

Combinatorial synthesis and screening of very large numbers of organic compounds has been widely applied in the pharmaceutical industry for drug discovery1. Recently, combinatorial arrays of inorganic materials with known or potential superconductivity2 and giant magnetoresistance3 have been synthesized and screened. The combinatorial approach is particularly well suited to ternary and higher-order inorganic materials, for which efforts to predict basic properties have been unsuccessful4. Here we describe an automated combinatorial method for synthesizing and characterizing thin-film libraries of up to 25,000 different materials, on a three-inch-diameter substrate, as candidates for new phosphors. The discovery and development of new compounds for ultraviolet-excited phosphors is of great importance for the development of flat-panel displays5 and lighting6. As there are no reliable theories to predict the relation between composition and phosphor colour and efficiency, the less than 100 useful commercial phosphor materials have been discovered through one-by-one serial synthesis and testing7,8. Our approach, in contrast, offers rapid screening of many compositions, and it has enabled us to identify a new red phosphor, Y0.845Al0.070La0.060Eu0.025VO4, which has a quantum efficiency comparable or superior to those of existing commercial red phosphors.

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Figure 1: Solid state combinatorial libraries.
Figure 2: Extrinsic photoluminescence (PL) efficiency measured from an optimization library of Y0.87−mAl0.07La0.06EumVO4 to determine the optimal Eu dopant concentration.
Figure 3: Excitation (left) and emission spectra (right) obtained from the Y0.845Al0.07La0.06Eu0.025VO4 phosphor.

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References

  1. Bunin, B. A., Plunkett, M. J. & Ellman, J. A. The combinatorial synthesis and chemical and biological evaluation of a 1,4-benzodiazepine library. Proc. Natl Acad. Sci. USA 91, 4708–4712 (1994).

    Article  ADS  CAS  Google Scholar 

  2. Xiang, X.-D. et al. Acombinatorial approach to materials discovery. Science 268, 1738–1740 (1995).

    Article  ADS  CAS  Google Scholar 

  3. Briceño, G., Chang, H., Sun, X., Schultz, P. G. & Xiang, X.-D. Aclass of cobalt oxide magnetoresistance materials discovered with combinatorial synthesis. Science 270, 273–275 (1995).

    Article  ADS  Google Scholar 

  4. DiSalvo, F. J. Solid-State chemistry—A rediscovered chemical frontier. Science 247, 649–655 (1990).

    Article  ADS  CAS  Google Scholar 

  5. Maruska, H. P., Parodos, T., Kalkhoran, N. M. & Halverson, W. D. Challenges for flat panel display phosphors. Mater. Res. Soc. Symp. Proc. 269–280 (1994).

  6. Butler, K. H. Fluorescent Lamp Phosphors (Pennsylvania State University Press, University Park, PA, (1980)).

    Google Scholar 

  7. Vecht, A. phosphors I: Powders. SID Seminar Lecture Notes 2, FF–2/3 (1996).

    Google Scholar 

  8. Ropp, R. C. The Chemistry of Artificial Lighting Devices, 414–656 (Elsevier, Amsterdam, (1993)).

    Google Scholar 

  9. Blasse, G. & Grabmaier, B. C. Luminescent Materials (Springer, Berlin, (1994)).

    Book  Google Scholar 

  10. Ouweltjes, J. L. Luminescence and phosphors. Mod. Mater. 5, 161–257 (1965).

    Article  Google Scholar 

  11. Ozawa, R. & Toshinao, A. Fluorescent elements based on aluminum-substituted yttrium vanadate. Japanese Patent No. 660215. Chem. Abstr. 72, 16741 (1969).

    Google Scholar 

  12. 12. Commission Internationale de L'Éclairage Colorimetry 2nd edn (Publication CIE No. 15.2, CentralBureauoftheCommissionInternationaledeL & Eacute;clairage, Vienn, (1986)).

  13. Yokota, W., Shoji, R. & Kimura, K. Yttrium vanadate phosphor. Japanese Patent No. 45041295 B4 701224. Chem. Abstr. 75, 103573 (1970).

    Google Scholar 

  14. Thorton, W. A. Quantum efficiency spectra of photoluminescent materials. J. Electr. Chem. Soc. 116, 286–298 (1969).

    Article  Google Scholar 

  15. Ropp, R. C. Luminescence and the Solid State: Studies in Inorganic Chemistry 12 (Elsevier, New York, (1991)).

    Google Scholar 

  16. Rodgers, J. R. & Villars, P. Trends in advanced materials data—Regularities and predictions. Mater. Res. Soc. Bull. 18, 27–29 (1993).

    Article  Google Scholar 

  17. Sun, X.-D., Gao, C., Wang, J. & Xiang, X.-D. Identification and optimization of advanced phosphors using combinatorial libraries. Appl. Phys. Lett. 70, 3353–3355 (1997).

    Article  ADS  CAS  Google Scholar 

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Acknowledgements

This work would not have been possible without technical assistance from I. Campbell, G. Wallace-Freedman, Y. Wang, P. Wang and J. Wu. We also acknowledge helpful advice from I. Goldwasser, S. Jacobsen and P. G. Schultz.

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Correspondence to W. Henry Weinberg.

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Danielson, E., Golden, J., McFarland, E. et al. A combinatorial approach to the discovery and optimization of luminescent materials. Nature 389, 944–948 (1997). https://doi.org/10.1038/40099

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