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磁场揭示条纹有序铜酸盐正常态中消失的霍尔响应。

Magnetic field reveals vanishing Hall response in the normal state of stripe-ordered cuprates.

作者信息

Shi Zhenzhong, Baity P G, Terzic J, Pokharel Bal K, Sasagawa T, Popović Dragana

机构信息

National High Magnetic Field Laboratory, Florida State University, Tallahassee, FL, 32310, USA.

School of Physical Science and Technology & Institute for Advanced Study, Soochow University, Suzhou, 215006, China.

出版信息

Nat Commun. 2021 Jun 17;12(1):3724. doi: 10.1038/s41467-021-24000-3.

Abstract

The origin of the weak insulating behavior of the resistivity, i.e. [Formula: see text], revealed when magnetic fields (H) suppress superconductivity in underdoped cuprates has been a longtime mystery. Surprisingly, the high-field behavior of the resistivity observed recently in charge- and spin-stripe-ordered La-214 cuprates suggests a metallic, as opposed to insulating, high-field normal state. Here we report the vanishing of the Hall coefficient in this field-revealed normal state for all [Formula: see text], where [Formula: see text] is the zero-field superconducting transition temperature. Our measurements demonstrate that this is a robust fundamental property of the normal state of cuprates with intertwined orders, exhibited in the previously unexplored regime of T and H. The behavior of the high-field Hall coefficient is fundamentally different from that in other cuprates such as YBaCuO and YBaCuO, and may imply an approximate particle-hole symmetry that is unique to stripe-ordered cuprates. Our results highlight the important role of the competing orders in determining the normal state of cuprates.

摘要

当磁场(H)抑制欠掺杂铜酸盐中的超导性时所揭示的电阻率弱绝缘行为的起源,即[公式:见文本],长期以来一直是个谜。令人惊讶的是,最近在电荷和自旋条纹有序的La - 214铜酸盐中观察到的电阻率高场行为表明,其高场正常态是金属性的,而非绝缘性的。在此,我们报告在该场揭示的正常态下,对于所有[公式:见文本],霍尔系数均消失,其中[公式:见文本]是零场超导转变温度。我们的测量表明,这是具有交织序的铜酸盐正常态的一种稳健的基本性质,在之前未被探索的T和H区域中表现出来。高场霍尔系数的行为与其他铜酸盐(如YBaCuO和YBaCuO)中的行为有根本不同,可能意味着条纹有序铜酸盐特有的近似粒子 - 空穴对称性。我们的结果突出了竞争序在确定铜酸盐正常态中的重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b39/8211789/4b8db56be7e5/41467_2021_24000_Fig1_HTML.jpg

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