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Intra-gap Absorption in Superconducting Ba(Fe1−x Co x )2As2 Thin Films Studied by a Fabry–Pérot Resonant Technique

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Abstract

For superconducting films, the optical intra-gap conductivity provides valuable information on the superconductivity mechanism, in particular on the gap symmetry, quasiparticles, and superconducting carrier dynamics. Experimentally, however, it is extracted with rather large uncertainty caused by the huge negative value of the dielectric constant. We have performed systematic numerical analysis of Fabry–Pérot resonators, which consist of two identical superconducting iron pnictide thin films on dielectric substrates that are positioned face-to-face to each other and are separated by a spacer. We demonstrate that such a Fabry–Pérot arrangement can significantly enhance the accuracy to the dynamical conductivity σ 1 of the films, as the efficiency of interaction of the probing radiation with the superconducting films is improved. Using a coherent source terahertz spectrometer (4–45 cm−1) with a Mach–Zehnder interferometer, we have measured the complex transmissivity of three Fabry–Pérot resonators composed by identical pairs of Ba(Fe0.9Co0.1)2As2 films with the thicknesses: 25, 30, and 50 nm. We show that the experimental spectra can be well described by a corresponding five-layer model based on Fresnel’s equations and analyze the advantages and challenges of the Fabry–Pérot resonant technique for iron pnictide films.

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Notes

  1. Inhomogeneities, disorder and even oxygen impurities might be the reason for the larger penetration depth and the lower quality of the films.

  2. Results of THz measurements on 50 nm thick Ba(Fe0.9Co0.1)2As2 films, presented at the Spring Meeting of the German Physical Society (DPG) 2012 in Berlin and the International Workshop on Iron-Based Superconductors organized by the SPP 1458 (DFG) 2012 in Munich.

References

  1. Gorshunov, B.P., Kozlov, G.V., Volkov, A.A., Lebedev, S.P., Federov, I.V., Prokhorov, A.M., Makhov, V.I., Schützmann, J., Renk, K.F.: Measurements of electrodynamic parameters of superconducting films in the far-infrared and submillimeter frequency range. Int. J. Infrared Millim. 14, 683 (1993)

    Article  ADS  Google Scholar 

  2. Gorshunov, B.P., Volkov, A.A., Prokhorov, A.M., Spektor, I.E.: Methods of terahertz–subterahertz BWO spectroscopy of conducting materials. Phys. Solid State 50, 2001 (2008)

    Article  ADS  Google Scholar 

  3. Schachinger, E., Carbotte, J.P.: Microwave conductivity in the ferropnictides with specific application to Ba1−x K x Fe2As2. Phys. Rev. B 80, 174526 (2009)

    Article  ADS  Google Scholar 

  4. Dressel, M., Drichko, N., Gorshunov, B., Pimenov, A.: THz spectroscopy of superconductors. IEEE JSTQE 14, 399 (2008)

    Google Scholar 

  5. Gorshunov, B., Wu, D., Voronkov, A.A., Kallina, P., Iida, K., Haindl, S., Kurth, F., Schultz, L., Holzapfel, B., Dressel, M.: Direct observation of the superconducting energy gap in the optical conductivity of iron-pnictides. Phys. Rev. B 81, 060509 (2010)

    Article  ADS  Google Scholar 

  6. Fischer, T., Pronin, A.V., Wosnitza, J., Iida, K., Kurth, F., Haindl, S., Schultz, L., Holzapfel, B., Schachinger, E.: Highly anisotropic energy gap in superconducting Ba(Fe0.9Co0.1)2As2 from optical conductivity measurements. Phys. Rev. B 82, 224507 (2010)

    Article  ADS  Google Scholar 

  7. Aguilar, R.V., Bilbro, L.S., Lee, S., Bark, C., Jiang, J., Weiss, J.D., Hellstrom, E.E., Larbalestier, D.C., Eom, C.B., Armitage, N.P.: Pair-breaking effects and coherence peak in the terahertz conductivity of superconducting BaFe2−2x Co2x As2 thin films. Phys. Rev. B 82, 180514(R) (2010)

    Google Scholar 

  8. Iida, K., Hänisch, J., Hühne, R., Kurth, F., Kidszun, M., Haindl, S., Werner, J., Schultz, L., Holzapfel, B.: Strong T c dependence for strained epitaxial Ba(Fe1−x Co x )2As2 thin films. Appl. Phys. Lett. 95, 192501 (2009)

    Article  ADS  Google Scholar 

  9. Renk, K.F., Betz, J., Schützmann, J., Prückl, A., Brunner, B., Lengfellner, H.: Use of high T c superconductors for far-infrared Fabry–Perot resonators. Appl. Phys. Lett. 57, 2148 (1990)

    Article  ADS  Google Scholar 

  10. Kumar, A.R., Boychev, V.A., Zhang, Z.M., Tanner, D.B.: Fabry–Perot resonators built with YBa2Cu3O7−δ films on Si substrates. J. Heat Transf. 122, 785 (2000)

    Article  Google Scholar 

  11. Gorshunov, B.P., Volkov, A.A., Spektor, A.S., Prokhorov, A.M., Mukhin, A.A., Dressel, M., Uchida, S., Loidl, A.: Terahertz BWO-spectroscopy. Int. J. Infrared Millim. 14, 683 (1993)

    Article  ADS  Google Scholar 

  12. Dressel, M., Grüner, G.: Electrodynamics of Solids. Cambridge University Press, Cambridge (2002)

    Book  Google Scholar 

  13. Lobo, R.P.S.M., Dai, Y.M., Nagel, U., Room, T., Carbotte, J.P., Timusk, T., Forget, A., Colson, D.: Optical signature of sub-gap absorption in the superconducting state of Ba(Fe,Co)2As2. Phys. Rev. B 82, 100506 (2010)

    Article  ADS  Google Scholar 

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Acknowledgements

Thanks to DFG SPP 1458 (HA 5934/3-1), RFBR 11-02-00199, RAS Program for fundamental research “Problems of Radiophysics”, the Humboldt foundation and the BW Landesgraduiertenförderung for financial support.

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Zapf, S., Gorshunov, B., Wu, D. et al. Intra-gap Absorption in Superconducting Ba(Fe1−x Co x )2As2 Thin Films Studied by a Fabry–Pérot Resonant Technique. J Supercond Nov Magn 26, 1227–1231 (2013). https://doi.org/10.1007/s10948-012-1928-z

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