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Dynamics of correlation-frozen antinodal quasiparticles in superconducting cuprates

机译:超导铜酸盐中相关冻结的反节点准粒子的动力学

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Many puzzling properties of high–critical temperature ( T c) superconducting (HTSC) copper oxides have deep roots in the nature of the antinodal quasiparticles, the elementary excitations with wave vector parallel to the Cu–O bonds. These electronic states are most affected by the onset of antiferromagnetic correlations and charge instabilities, and they host the maximum of the anisotropic superconducting gap and pseudogap. We use time-resolved extreme-ultraviolet photoemission with proper photon energy (18 eV) and time resolution (50 fs) to disclose the ultrafast dynamics of the antinodal states in a prototypical HTSC cuprate. After photoinducing a nonthermal charge redistribution within the Cu and O orbitals, we reveal a dramatic momentum-space differentiation of the transient electron dynamics. Whereas the nodal quasiparticle distribution is heated up as in a conventional metal, new quasiparticle states transiently emerge at the antinodes, similarly to what is expected for a photoexcited Mott insulator, where the frozen charges can be released by an impulsive excitation. This transient antinodal metallicity is mapped into the dynamics of the O-2p bands, thus directly demonstrating the intertwining between the low- and high-energy scales that is typical of correlated materials. Our results suggest that the correlation-driven freezing of the electrons moving along the Cu–O bonds, analogous to the Mott localization mechanism, constitutes the starting point for any model of high- T c superconductivity and other exotic phases of HTSC cuprates.
机译:高临界温度(T c )超导(HTSC)氧化铜的许多令人困惑的性质深深植根于反节点准粒子的性质,即波矢量平行于Cu-O键的基本激发。这些电子状态受反铁磁相关性和电荷不稳定性的影响最大,并且它们具有各向异性超导间隙和拟间隙的最大值。我们使用具有适当光子能量(18 eV)和时间分辨率(50 fs)的时间分辨的极端紫外光发射,来揭示典型HTSC铜酸盐中反节点态的超快动力学。在光诱导Cu和O轨道内的非热电荷重新分布后,我们揭示了瞬态电子动力学的显着动量空间差异。与传统金属一样,节点准粒子分布会被加热,而在波腹处会出现新的准粒子态,这与光激发的Mott绝缘子所期望的类似,在这种情况下,冻结的电荷可以通过脉冲激励释放。这种瞬态的抗结金属性被映射到O-2p谱带的动力学中,从而直接证明了相关材料中典型的低能级和高能级之间的纠缠。我们的结果表明,类似于Mott定位机制,沿Cu-O键运动的电子相关驱动冻结,构成了任何高T c 超导模型和其他奇异模型的起点HTSC铜酸盐阶段。

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