المساق
arXiv 2014-04-30 DOI 10.1038/ncomms6875 0 مشاهدة

Connection between charge-density-wave order and charge transport in the cuprate superconductors

Tabis, W. · Li, Y. · Tacon, M. Le · Braicovich, L · Kreyssig, A. · Minola, M. · Dellea, G. · Weschke, E. · Veit, M. J. · Ramazanoglu, M. · Goldman, A. I. · Schmitt, T. · Ghiringhelli, G. · Barišić, N. · Chan, M. K. · Dorow, C. J. · Yu, G. · Zhao, X. · Keimer, B. · Greven, M.

الأصل · EN

Charge-density-wave (CDW) correlations within the quintessential CuO₂ planes have been argued to either cause [1] or compete with [2] the superconductivity in the cuprates, and they might furthermore drive the Fermi-surface reconstruction in high magnetic fields implied by quantum oscillation (QO) experiments for YBa₂Cu₃O₆₊δ (YBCO) [3] and HgBa₂CuO₄₊δ (Hg1201) [4]. Consequently, the observation of bulk CDW order in YBCO was a significant development [5,6,7]. Hg1201 features particularly high structural symmetry and recently has been demonstrated to exhibit Fermi-liquid charge transport in the relevant temperature-doping range of the phase diagram, whereas for YBCO and other cuprates this underlying property of the CuO₂ planes is partially or fully masked [8-10]. It therefore is imperative to establish if the pristine transport behavior of Hg1201 is compatible with CDW order. Here we investigate Hg1201 (Tc = 72 K) via bulk Cu L-edge resonant X-ray scattering. We indeed observe CDW correlations in the absence of a magnetic field, although the correlations and competition with superconductivity are weaker than in YBCO. Interestingly, at the measured hole-doping level, both the short-range CDW and Fermi-liquid transport appear below the same temperature of about 200 K. Our result points to a unifying picture in which the CDW formation is preceded at the higher pseudogap temperature by q = 0 magnetic order [11,12] and the build-up of significant dynamic antiferromagnetic correlations [13]. Furthermore, the smaller CDW modulation wave vector observed for Hg1201 is consistent with the larger electron pocket implied by both QO [4] and Hall-effect [14] measurements, which suggests that CDW correlations are indeed responsible for the low-temperature QO phenomenon.

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