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c-axis tunneling spectra in high-Tcsuperconductors in the presence of ad-charge-density wave

2004/01/28 by A. Greco, R. Zeyher
Materials Science · Physics and Astronomy · #Iron-based superconductors research #Physics of Superconductivity and Magnetism #Quantum and electron transport phenomena #cond-mat.str-el #cond-mat.supr-con

paper · pdf · doi:10.1103/physrevb.70.024518

published as PRB 70, 024518 (2004) · 12 pages, 16 figures

arxiv created 2004/01/28 · openalex publication_date 2004/07/27 · arxiv updated 2010/06/16 · openalex created_date 2016/06/24 · openalex updated_date 2026/07/28

Abstract

The optimally doped and underdoped region of the t\text\ensuremath-J model at large N (N is the number of spin components) is governed by the competition of d-wave superconductivity (SC) and a d\text\ensuremath-charge-density wave(d-CDW). The partial destruction of the Fermi surface by the d-CDW and the resulting density of states are discussed. Furthermore, c-axis conductances for incoherent and coherent tunneling are calculated, considering both an isotropic and an anisotropic in-plane momentum dependence of the hopping matrix element between the planes. The influence of self-energy effects on the conductances is also considered using a model where the electrons interact with a dispersionless, low-lying branch of bosons. We show that available tunneling spectra from break junctions are best explained by assuming that they result from incoherent tunneling with a strongly anisotropic hopping matrix element of the form suggested by band structure calculations. The conductance spectra are then characterized by one single peak which evolves continuously from the superconducting to the d-CDW state with decreasing doping. The intrinsic c-axis tunneling spectra are, on the other hand, best explained by coherent tunneling. Calculated spectra show at low temperatures two peaks due to SC and d-CDW. With increasing temperature the BCS-like peak moves to zero voltage and vanishes at Tc, exactly as in experiment. Our results thus can explain why break junction and intrinsic tunneling spectra are different from each other. Moreover, they support a scenario of two competing order parameters in the underdoped region of high-Tc superconductors.

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