Three-dimensional collective charge excitations in electron-doped copper oxide superconductors.

Hepting, M; Chaix, L; Huang, E W; Fumagalli, R; Peng, Y Y; Moritz, B; Kummer, K; Brookes, N B et al. · Nature · 2018

basic_science · Level V

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Abstract

High-temperature copper oxide superconductors consist of stacked CuO<sub>2</sub> planes, with electronic band structures and magnetic excitations that are primarily two-dimensional<sup>1,2</sup>, but with superconducting coherence that is three-dimensional. This dichotomy highlights the importance of out-of-plane charge dynamics, which has been found to be incoherent in the normal state<sup>3,4</sup> within the limited range of momenta accessible by optics. Here we use resonant inelastic X-ray scattering to explore the charge dynamics across all three dimensions of the Brillouin zone. Polarization analysis of recently discovered collective excitations (modes) in electron-doped copper oxides<sup>5-7</sup> reveals their charge origin, that is, without mixing with magnetic components<sup>5-7</sup>. The excitations disperse along both the in-plane and out-of-plane directions, revealing its three-dimensional nature. The periodicity of the out-of-plane dispersion corresponds to the distance between neighbouring CuO<sub>2</sub> planes rather than to the crystallographic c-axis lattice constant, suggesting that the interplane Coulomb interaction is responsible for the coherent out-of-plane charge dynamics. The observed properties are hallmarks of the long-sought 'acoustic plasmon', which is a branch of distinct charge collective modes predicted for layered systems<sup>8-12</sup> and argued to play a substantial part in mediating high-temperature superconductivity<sup>10-12</sup>.