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Scanning tunneling microscopy and spectroscopy for cluster and small particle research

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Zeitschrift für Physik D Atoms, Molecules and Clusters

Abstract

Scanning tunneling microscopy (STM) and spectroscopy (STS) are new methods to investigate atomic arrangements and electronic structures of clusters and small particles of atoms. In this paper we review recent developments in this field, in particular the work from our laboratory. We show studies of single adatoms, small clusters and larger particles of platinum and a trimer of aluminum imaged with atomic resolution on highly-orient ed pyrolytic graphite. We find different isomeric structures for clusters of a specific size. Taking the substrate lattice as reference we determine bond lengths and angles for the clusters. We find that adsorbed Pt-particles have a strong influence on the substrate. Periodic charge density modulations on the graphite lattice surrounding the particles are observed. We also discuss recent STS experiments which showed Coulomb blockade in electron tunneling. A silicon-oxide-graphite tip-junction is used where a mesoscopic insulating area containing trap levels for temporary electron storage is responsible for the blockade of single electron transport. Such an ultra-small insulator capacitor shows large voltage steps in current-voltage characteristics and quantization of the tunneling current.

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References

  1. Venables, J.A., Derrien, J., Janssen, A.P.: Surf. Sci.95 441 (1980)

    Google Scholar 

  2. Grier, D., Ben-Jacob, E., Clarke, R., Sander, L.M.: Phys. Rev. Lett.56 1264 (1986)

    Google Scholar 

  3. Matolin, V., Gillet, E.: Surf. Sci.166, L115 (1986)

  4. Masson, A., Bellamy, B., Hadj Romdhane, Y., Che, M., Roulet, H., Dufour, G.: Surf. Sci.173 479 (1986)

    Google Scholar 

  5. Venables, J.A., Spiller, G.D.T., Hanbucken, M.: Rep. Prog. Phys.47 399 (1984)

    Google Scholar 

  6. Kellog, G.L., Surf. Sci.187 153 (1987)

    Google Scholar 

  7. Iijima, S., Ichihashi, T.: Phys. Rev. Lett.56 616 (1986)

    Google Scholar 

  8. Ganz, E., Sattler, K., Clarke, J.: J. Vac. Sci. Technol. A6, 419 (1988)

    Google Scholar 

  9. Ganz, E., Sattler, K., Clarke, J.: Phys. Rev. Lett.60 1856 (1988); ibid. Surf. Sci.219, 33 (1989)

    Google Scholar 

  10. Anno, E., Hoshono, R.: Surf. Sci.144 567 (1984)

    Google Scholar 

  11. Fayet, P., Granzer, F., Hegenbart, G., Moisar, E., Pischel, B., Woeste, L.: Phys. Rev. Lett.55 3002 (1985)

    Google Scholar 

  12. Wertheim, G.K., DiCenzo, S.B., Buchanan, D.N.E.: Phys. Rev. B33, 5384 (1986)

    Google Scholar 

  13. First, P.N., Stroscio, J.A., Dragoset, R.A., Pierce, D.T., Celotta, R.J.: Phys. Rev. Lett.63 1416 (1989)

    Google Scholar 

  14. Kuk, Y., Jarrold, M.F., Silverman, P.J., Bower, J.E., Brown, W.L.: Phys. Rev. B39, 11168 (1989)

    Google Scholar 

  15. Nanoscope, Digital Instruments, Inc., Santa Barbara, CA, USA

  16. A statistical atomic positioning analysis on a picometer scale is given in: Mueller, U., Sattler, K., Xhie, J., Venkateswaran, N., Raina, G.: Z. Phys D-Atoms, Molecules and Clusters (1991) (this issue)

  17. A description of the experimental conditions and further STM images are given in: Kaiser, B., Sattler, K., Mueller, U., Venkateswaran, N., Xhie, J., Raina, G.: Z Phys D-Atoms, Molecules and Clusters (1991) (this issue)

  18. Upton, T.H.: Phys. Rev. Lett.56 2168 (1986)

    Google Scholar 

  19. The images of 10 different superstructures and the corresponding models using the concept of periodic charge density modulations is given in: Xhie, J., Sattler, K., Mueller, U., Venkateswaran, N., Raina, G.: (submitted for publication)

  20. Albrecht, T.R., Mizes, H.A., Nogami, J., Park, S.-I., Quate, C.F.: Appl. Phys. Lett.52 362 (1988)

    Google Scholar 

  21. Rabe, J.P., Sano, M., Batchelder, D., Katatchev, A.A.: Microsc.152 573 (1988)

    Google Scholar 

  22. Mizes, H.A., Foster, J.S.: Science244 559 (1989)

    Google Scholar 

  23. Nakagawa, Y., Bando, H., Ono, M., Kajimura, K.: (to be published)

  24. Zeller, H.R., Giaever, I.: Phys. Rev.181 789 (1969)

    Google Scholar 

  25. Mullen, K., Ben-Jakob, E., Jaklevic, R.C., Schuss, Z.: Phys. Rev. B37, 9810 (1988)

    Google Scholar 

  26. Lambe, J., Jaklevic, R.C.: Phys. Rev. Lett.22 1371 (1969)

    Google Scholar 

  27. Barner, J.B., Ruggerio, S.T.: Phys. Rev. Lett.59 807 (1987)

    Google Scholar 

  28. Wilkins, R., Ben-Jacob, E., Jaklevic, R.C.: Phys. Rev. Lett.63 801 (1989)

    Google Scholar 

  29. van Bentum, P.J.M., Smokers, R.T.M., van Kempen, H.: Phys. Rev. Lett.60 2543 (1988)

    Google Scholar 

  30. Venkateswaran, N., Sattler, K., Mueller, U., Kaiser, B., Raina, G., Xhie, J.: (submitted for publication)

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Sattler, K. Scanning tunneling microscopy and spectroscopy for cluster and small particle research. Z Phys D - Atoms, Molecules and Clusters 19, 287–292 (1991). https://doi.org/10.1007/BF01448313

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