论文标题

量子振荡在不足的高$ t _ {\ rm c} $ superpoductors中,量子振荡揭示了硬抗邻际差距

Hard antinodal gap revealed by quantum oscillations in the pseudogap regime of underdoped high-$T_{\rm c}$ superconductors

论文作者

Hartstein, Mate, Hsu, Yu-Te, Modic, Kimberly A., Porras, Juan, Loew, Toshinao, Tacon, Matthieu Le, Zuo, Huakun, Wang, Jinhua, Zhu, Zengwei, Chan, Mun K., McDonald, Ross D., Lonzarich, Gilbert G., Keimer, Bernhard, Sebastian, Suchitra E., Harrison, Neil

论文摘要

对假态状态下缺失的抗腹电子激发的理解对于揭示不足的铜酸盐高温超导体的物理学至关重要。然而,到目前为止,大多数高温实验都无法辨别出抗邻近状态是否由于阻尼而无法观察到,还是由于其间隙而消失。在这里,我们通过使用量子振荡来区分这两种情况,以检查小费米的表面袋(发现仅占据了不足的酸盐中的布里群区区域的2%,它们是否隔离出来,与大多数完全覆盖的状态密度跨越了抗氨基酸,或者是否是热力学的抗氨基酸脉冲,是否是热力学的态度均与未覆盖的Antinodal dogpappapped Antinodal的态度相结合的。我们发现与小费米表面袋有关的量子振荡具有隔离二维费米表面袋的标志性锯齿波形特征。这一发现表明,抗腹状状态被延伸到大多数布里群区域的硬间隙破坏,对伪粒子的巨大潜在起源对几乎整个Brillouin区域中的伪造型区域中的几乎整个Brillouin区域都放置了强烈的约束。

An understanding of the missing antinodal electronic excitations in the pseudogap state is essential for uncovering the physics of the underdoped cuprate high temperature superconductors. The majority of high temperature experiments performed thus far, however, have been unable to discern whether the antinodal states are rendered unobservable due to their damping, or whether they vanish due to their gapping. Here we distinguish between these two scenarios by using quantum oscillations to examine whether the small Fermi surface pocket, found to occupy only 2% of the Brillouin zone in the underdoped cuprates, exists in isolation against a majority of completely gapped density of states spanning the antinodes, or whether it is thermodynamically coupled to a background of ungapped antinodal states. We find that quantum oscillations associated with the small Fermi surface pocket exhibit a signature sawtooth waveform characteristic of an isolated two-dimensional Fermi surface pocket. This finding reveals that the antinodal states are destroyed by a hard gap that extends over the majority of the Brillouin zone, placing strong constraints on a drastic underlying origin of quasiparticle disappearance over almost the entire Brillouin zone in the pseudogap regime.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源