Research ArticleOpen AccessGoogle Scholar indexed
Skyrmion-Like Solitons, Topological Quasi-Positroniums, and Soliton-Catalytic Effects in Graphite-Potassium Intercalation Compounds and Metal Surfaces
Department of Physics, Tokyo Gakugei University, Tokyo, Japan
Department of Physics, Tokyo Gakugei University, Tokyo, Japan
Department of Physics, Tokyo Gakugei University, Tokyo, Japan
Department of Physics, Tokyo Gakugei University, Tokyo, Japan
- 1 Department of Physics, Tokyo Gakugei University, Tokyo, Japan
- 2 Department of Physics, Tokyo Gakugei University, Tokyo, Japan
- 3 Department of Physics, Tokyo Gakugei University, Tokyo, Japan
- 4 Department of Physics, Tokyo Gakugei University, Tokyo, Japan
Journal of Modern Physics·Volume 05 (2014)·Pages 1483–1488·Published 15 September 2014·DOI10.4236/jmp.2014.515150
Copy link · social · email
Abstract
We have analyzed the narrow components in the positron annihilation angular correlation spectra of graphite-potassium intercalation with the theoretical formula, which is extended from “topological quasi-positronium” model and discusses the relation to the catalytic activity of hydrogens. One mechanism of the soliton-catalytic effect is proposed.
KeywordsModel of Surface Chemical ReactionsCatalysisAlkali MetalPositronPositron Annihilation
- Watanabe, K., Soma, M., Onishi, T. and Tamaru, K. (1971) Nature, 233, 160-161. http://dx.doi.org/10.1038/physci233160a0
- Lagrange, P., Metrot, A. and Herold, C.R. (1972) Académie des Sciences, Paris C, 275, 765.
- Watanabe, K., Kondou, T., Soma, M., Onishi, T. and Tamaru, K. (1973) Proceedings of the Royal Society A, 333, 51-67.
- Kondou, T., Inokuchi, H. and Wakayama, N. (1965) The Journal of Chemical Physics, 43, 3766. http://dx.doi.org/10.1063/1.1696553
- Inokuchi, H., Wakayama, N., Kondou, T. and Mori, Y. (1967) The Journal of Chemical Physics, 46, 837. http://dx.doi.org/10.1063/1.1840813
- Furdin, G., Lagrange, P., Herold, A. and Zeller, C.R. (1976) Académie des Sciences, Paris C, 282, 563.
- Conard, J., Estrade-Szwarckoph, H., Lauginie, P., Makrini, M., Lagrange, P. and Gnerard, D. (1980) Synthetic Metals, 2, 261-267. http://dx.doi.org/10.1016/0379-6779(80)90055-7
- Enoki, T., Sano, M. and Inokuchi, H. (1983) The Journal of Chemical Physics, 78, 2017. http://dx.doi.org/10.1063/1.444949
- Colombino, P., Fiscella, B. and Trossi, L. (1963) Nuovo Cimento, 27, 589. http://dx.doi.org/10.1007/BF02784565
- Berko, S., Kelly, R.E. and Plaskett, J.S. (1958) Physical Review Letters, 106, 824. http://dx.doi.org/10.1103/PhysRev.106.824
- Kanazawa, I., Tanigawa, S., Suzuki, R., Mizuhara, Y., Sano, M. and Inokuchi, H. (1987) Journal of Physics and Chemistry of Solids, 48, 701-705. http://dx.doi.org/10.1016/0022-3697(87)90062-X
- Kanazawa, I., Tanigawa, S., Suzuki, R., Sano, M. and Inokuchi, H. (1990) Physical Review B, 42, 11583. http://dx.doi.org/10.1103/PhysRevB.42.11583
- Shimotomai, M., Takahashi, T., Doyama, M. and Iwata, T. (1982) Positron Annihilation. Coleman, D.G., Sharma, S.C. and Diana, L.M., Eds., North-Holland, Amsterdam, p. 635.
- Cartier, E., Heinrich, F., Pfluger, P. and Güntherodt, H.J. (1981) Physical Review Letters, 46, 272. http://dx.doi.org/10.1103/PhysRevLett.46.272
- Cartier, E., Heinrich, F., Gubler, U.M., Pfluger, P., Geiser, V. and Güntherodt, H.J. (1983) Synthetic Metals, 8, 119-124.
- Posternak, M., Baldereschi, A., Freeman, A.J., Wimmer, E. and Weinert, M. (1983) Physical Review Letters, 50, 761. http://dx.doi.org/10.1103/PhysRevLett.50.761