Abstract
THE mechanism of superconductivity in the recently discovered layered copper oxide compounds1 is still unknown. In the conventional theory, electron pairing mediated by the exchange of low-energy bosons leads to superconductivity. If the boson energies are not too large compared to the energy gapΔ (that is, ħωo≲ 10Δ), then the interaction of the electron-pair quasiparticles with these bosons leads to an enhancement of the ratio 2ΔKTc (where Tc is the superconducting transition temperature), as well as to modifications to the spectrum of excitations above the energy gap. The term 'strong coupling' is used to denote these phenomena2,3. Infrared spectroscopy can be used to probe these modifications, and thus to measure the spectrum of mediating excitations in strongly coupled superconductors. Here we report infrared conductivity data for YBa2Cu3O7, and show that even up to energies of ≳0.3 eV there is no evidence for a pair-mediating retarded interaction of significant strength. These results suggest that a conventional picture of superconductivity, involving mediation by the exchange of bosons of energy much less than the Fermi energy (EF≈0.5eV), is unlikely to be adequate for YBa2Cu3O7.
This is a preview of subscription content, access via your institution
Access options
Subscribe to this journal
Receive 51 print issues and online access
$199.00 per year
only $3.90 per issue
Rent or buy this article
Get just this article for as long as you need it
$39.95
Prices may be subject to local taxes which are calculated during checkout
References
Bednorz, J. G. & Müller, K. A. Z. Phys. B64, 189–193 (1986).
Wada, Y. Rev. Mod. Phys. 36, 253–257 (1964).
Scalapino, D. J. in Superconductivity (ed. Parks, R. D.) 449–560 (Dekker, New York, 1969).
McMillan, W. L. & Rowell, J. M. in Superconductivity (ed. Parks, R. D.) 561–613 (Dekker, New York, 1969).
Joyce, R. R. & Richards, P. L. Phys. Rev. Lett. 24, 1007–1011 (1970).
Brandli, G. & Sievers, A. J. Phys. Rev. B5, 3350–3557 (1972).
Wu, M. K. et al. Phys. Rev. Lett. 58, 908–910 (1987).
Harshman, D. R. et al. Phys. Rev. B36, 2386–2389 (1987).
Krusin-Elbaum, L., Greene, R. L., Holtzberg, F., Malozemoff, A. P. & Yeshurun, Y. Phys. Rev. Lett. 62, 217–220 (1989).
Schlesinger, Z. et al. Phys. Rev. (submitted).
Schlesinger, Z., Collins, R. T., Kaiser, D. L. & Holtzberg, F. Phys. Rev. Lett. 59, 1958–1962 (1987).
Richards, P. L. & Tinkham, M. Phys. Rev. 119, 575–590 (1960).
Collins, R. T., Schlesinger, Z., Holtzberg, F. & Feild, C. Phys. Rev. Lett. 63, 422–425 (1989).
Schutzmann, J. et al. Europhys. Lett. 8, 679–684 (1989).
Thomas, G. A. et al. Phys. Rev. Lett. 61, 1313–1316 (1988).
Orenstein, J. et al. Preprint, AT&T Bell Laboratories (1989).
Manzke, R., Buslaps, T., Classen, R. & Fink, J. Europhys. Lett. 9, 477–482 (1989).
Imer, J.-M. et al. Phys. Rev. Lett. 62, 336–339 (1989).
Olson, C. G. et al. Science 245, 731–733 (1989).
Demuth, J. et al. Preprint, IBM T. J. Watson Research Center (1989).
Kirtley, J. R. Preprint, IBM T. J. Watson Research Center (1989).
Bickers, N. E. et al. Phys. Rev. (submitted).
Collins, R. T., Schlesinger, Z., Holtzberg, F. & Feild, C. Phys. Rev. B39, 6571–6574 (1989).
Kane, C. L., Lee, P. A. & Read, N., Phys. Rev. B39, 6880–6897 (1989).
Author information
Authors and Affiliations
Rights and permissions
About this article
Cite this article
Schlesinger, Z., Collins, R., Holtzberg, F. et al. Absence of strong coupling in YBa2Cu307inferred from infrared conductivity. Nature 343, 242–243 (1990). https://doi.org/10.1038/343242a0
Received:
Accepted:
Issue Date:
DOI: https://doi.org/10.1038/343242a0
Comments
By submitting a comment you agree to abide by our Terms and Community Guidelines. If you find something abusive or that does not comply with our terms or guidelines please flag it as inappropriate.