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Langmuir-Blodgett Films of Potential Unidimensional Organic Rectifiers

Published online by Cambridge University Press:  25 February 2011

Robert M. Metzger
Affiliation:
Department of Chemistry, The University of Alabama, Tuscaloosa, Alabama, 35487–0336, USA
Charles A. Panetta
Affiliation:
Department of Chemistry, The University of Mississippi, University, MS 38677, USA
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Abstract

The progress of the Organic Rectifier Project (ORP) is reviewed. Several molecules of the type D-σ-A (D=organic one-electron donor, σ = covalent saturated bridge, A = organic one-electron acceptor) have been synthesized, to test the Aviram-Ratner Ansatz that they could be one-molecule thick rectifiers of electrical current. Many of these molecules (σ= urethane) self-assemble as Langmuir-Blodgett films; the cyclic voltammetry peaks confirm that these molecules preserve the good D and A characteristics. Calculations confirm that the zwitterionic state D+-σ-A- is much below the state D-σ-A+, as expected. Preliminary tests of electrical rectification have failed. With the installation of a new scanning electron microscope, the Aviram-Ratner Ansatz will soon be put to a final and definitive test

Type
Research Article
Copyright
Copyright © Materials Research Society 1990

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References

REFERENCES

[1] Aviram, A., Freiser, M. J., Seiden, P. E., and Young, W. R., U.S.Patent US-3, 953, 874 (27 April 1976).Google Scholar
[2] Aviram, A. and Ratner, M. A., Chem. Phys. Lett. 29, 277 (1974).CrossRefGoogle Scholar
[3] Aviram, A., Seiden, P. E., and Ratner, M. A., in Molecular Electronic Devices, Carter, F. L., ed. (Dekker, New York, 1982) page 5.Google Scholar
[4] Metzger, R. M. and Panetta, C. A., J. Phys. (Les Ulis, Fr.) Colloque 44, C31605 (1983).Google Scholar
[5] Metzger, R. M. and Panetta, C. A., in Molecular Electronic Devices, Vol. II, Carter, F. L., ed. (Dekker, New York, 1987) page 1.Google Scholar
[6] Panetta, C. A., Baghdadchi, J., and Metzger, R. M., Mol. Cryst. Liq. Cryst. 107. 103 (1984).Google Scholar
[7] Metzger, R. M., Panetta, C. A., Heimer, N. E., Bhatti, A. M., Torres, E., Blackburn, G. F., Tripathy, S. K., and Samuelson, L. A., J. Molec. Electronics 2, 119 (1986).Google Scholar
[8] Metzger, R. M., Panetta, C. A., Miura, Y., and Torres, E., Synth. Metals 18, 797 (1987).Google Scholar
[9] Torres, E., Panetta, C. A., and Metzger, R. M., J. Org. Chem. 52, 2944 (1987).CrossRefGoogle Scholar
[10] Metzger, R. M. and Panetta, C. A., in Proc. of the Eighth Winter Conference on Low-Temperature Physics. Cuernavaca. Mexico. 81 (1987).Google Scholar
[11] Laidlaw, R. K., Miura, Y., Panetta, C. A., and Metzger, R. M., Acta Cryst. C44, 2009 (1988).Google Scholar
[12] Laidlaw, R. K., Miura, Y., Grant, J. L., Cooray, L., Clark, M., Kispert, L. D., and Metzger, R. M., J. Chem. Phys. 87, 4967 (1987).Google Scholar
[13] Laidlaw, R. K., Baghdadchi, J., Panetta, C. A., Miura, Y., Torres, E., and Metzger, R. M., Acta Cryst. B44, 645 (1988).Google Scholar
[14] Miura, Y., Laidlaw, R. K., Panetta, C. A., and Metzger, R. M., Acta Cryst. C44. 2007 (1988).Google Scholar
[15] Metzger, R. M., Schumaker, R. R., Cava, M. P., Laidlaw, R. K., Panetta, C. A., and Torres, E., Langmuir 4, 298 (1988).Google Scholar
[16] Metzger, R. M. and Panetta, C. A. in Organic and Inorganic Lower-Dimensional Materials, NATO ASI Series, Vol. B168, edited by Delhaes, P. and Drillon, M. (Plenum, New York, 1988) page 271.Google Scholar
[17] Miura, Y., Torres, E., Panetta, C. A., and Metzger, R. M., J. Org. Chem. 52, 439 (1988).Google Scholar
[18] Miura, Y., Panetta, C. A., and Metzger, R. M., J. Liquid Chrom. 11, 245 (1988).Google Scholar
[19] Metzger, R. M. and Panetta, C. A., J. Mol. Electronics 5, 1 (1989).Google Scholar
[20] Metzger, R. M. and Panetta, C. A., J. Chim. Phys. 85, 1125 (1988).CrossRefGoogle Scholar
[21] Metzger, R. M. and Panetta, C. A., Synth. Met. 28, C807 (1989).Google Scholar
[22] Metzger, R. M., Laidlaw, R. K., Torres, E., and Panetta, C. A., J. Cryst.Spectr.Res. 19, 475 (1989).Google Scholar
[23] Metzger, R. M. and Panetta, C. A. in Molecular Electronics - Science and Technology, edited by Aviram, A. and Bross, A. (New York Engineering Foundation), in press.Google Scholar
[24] Metzger, R. M., Wiser, D. C., Laidlaw, R. K., Takassi, M. A., Mattern, D. L., and Panetta, C. A., Langmuir, accepted and in press.Google Scholar
[25] Metzger, R. M. and Panetta, C. A., in Lower-Dimensional Systems and Molecular Electronics. NATO ASI Series, edited by Metzger, R. M. and Day, P. (Plenum, New York, in press)Google Scholar
[26] See e.g. Gaines, G. L. Jr. Insoluble Monolayers at Liquid - Gas Interfaces (Interscience, New York, 1966).Google Scholar
[27] Blodgett, K. B., J. Am. Chem. Soc. 57., 1007 (1935).CrossRefGoogle Scholar
[28] Blodgett, K. B. and Langmuir, I., Phys. Rev. 51, 964 (1937).Google Scholar
[29] Kuhn, H., Möbius, D., and Bücher, H. in Techniques of Chemistry. Vol. I - Physical Methods of Chemistry - Part V - Determination of Thermodynamic and Surface Properties Weissberger, A. and Rossiter, B. W., eds. (Wiley - Interscience, New York, 1972) page 577.Google Scholar
[30] Kuhn, H., Pure Appl. Chem. 51, 341 (1979).Google Scholar
[31] Kuhn, H., Pure Appl. Chem. 51, 2105 (1981).Google Scholar
[32] See e. g. Thin Solid Films Vols. 68 (1980), 99 (1983), 132–134 (1985), 159–160 (1987).Google Scholar
[33] Murray, R. W., Acc. Chem. Res. 13, 135 (1980).CrossRefGoogle Scholar
[34] Maoz, R., Netzer, L., Gun, J., and Sagiv, J., J. Chim. Phys. 85, 1059 (1988).Google Scholar
[35] Calcaterra, L. T., Closs, G. L., and Miller, J. R., J. Am. Chem. Soc. 105, 670 (1983).Google Scholar
[36] Miller, J. R., Calcaterra, L. T., and Closs, G. L., J. Am. Chem. Soc. 106, 3047 (1984).CrossRefGoogle Scholar
[37] Marcus, R. A., Disc. Faraday Soc. 29, 21 (1960).Google Scholar
[38] Anderson, J. R. and Jorgensen, O., J. Chem. Soc. Perkin Trans. I, 3095 (1979).Google Scholar
[39] Aviram, A., Joachim, C., and Pomerantz, M., Chem. Phys. Lett. 146, 490 (1988).Google Scholar
[40] Fujihira, M., Nishiyama, K., and Yamada, H., Thin Solid Films 122, 77 (1985).Google Scholar
[41] Fujihira, M. and Yamada, Y., Thin Solid Films 160, 125 (1988).Google Scholar