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铜氧化物中向列超导相涨落导致的巨大横向磁电阻

Colossal transverse magnetoresistance due to nematic superconducting phase fluctuations in a copper oxide.

作者信息

Wårdh Jonatan, Granath Mats, Wu Jie, Bollinger Anthony T, He Xi, Božović Ivan

机构信息

Department of Physics, University of Gothenburg, SE-41296 Gothenburg, Sweden.

Brookhaven National Laboratory, Upton, NY 11973, USA.

出版信息

PNAS Nexus. 2023 Aug 3;2(8):pgad255. doi: 10.1093/pnasnexus/pgad255. eCollection 2023 Aug.

Abstract

Electronic anisotropy ("nematicity") has been detected in cuprate superconductors by various experimental techniques. Using angle-resolved transverse resistance (ARTR) measurements, a very sensitive and background-free technique that can detect 0.5% anisotropy in transport, we have observed it also in LaSrCuO (LSCO) for 0.02 ≤ ≤ 0.25. A central enigma in LSCO is the rotation of the nematic director (orientation of the largest longitudinal resistance) with temperature; this has not been seen before in any material. Here, we address this puzzle by measuring the angle-resolved transverse magnetoresistance (ARTMR) in LSCO. We report the discovery of colossal transverse magnetoresistance (CTMR)-an order-of-magnitude drop in the transverse resistivity in the magnetic field of 6 T. We show that the apparent rotation of the nematic director is caused by anisotropic superconducting fluctuations, which are not aligned with the normal electron fluid, consistent with coexisting bond-aligned and diagonal nematic orders. We quantify this by modeling the (magneto-)conductivity as a sum of normal (Drude) and paraconducting (Aslamazov-Larkin) channels but extended to contain anisotropic Drude and Cooper-pair effective mass tensors. Strikingly, the anisotropy of Cooper-pair stiffness is much larger than that of the normal electrons. It grows dramatically on the underdoped side, where the fluctuations become quasi-one-dimensional. Our analysis is general rather than model dependent. Still, we discuss some candidate microscopic models, including coupled strongly-correlated ladders where the transverse (interladder) phase stiffness is low compared with the longitudinal intraladder stiffness, as well as the anisotropic superconducting fluctuations expected close to the transition to a pair-density wave state.

摘要

通过各种实验技术,在铜酸盐超导体中检测到了电子各向异性(“向列性”)。利用角分辨横向电阻(ARTR)测量这一非常灵敏且无背景的技术,其能检测到输运中0.5%的各向异性,我们在0.02≤δ≤0.25的LaSrCuO(LSCO)中也观察到了这种各向异性。LSCO中的一个核心谜团是向列指向矢(最大纵向电阻的方向)随温度的旋转;这在任何材料中都未曾见过。在此,我们通过测量LSCO中的角分辨横向磁电阻(ARTMR)来解决这个难题。我们报告了巨横向磁电阻(CTMR)的发现——在6 T磁场中横向电阻率下降了一个数量级。我们表明,向列指向矢的明显旋转是由各向异性的超导涨落引起的,这些涨落与正常电子流体不对齐,这与共存的键排列和对角向列序一致。我们通过将(磁)电导率建模为正常(德鲁德)和准导电(阿斯拉马佐夫 - 拉金)通道的总和,但扩展到包含各向异性的德鲁德和库珀对有效质量张量来对此进行量化。引人注目的是,库珀对刚度的各向异性比正常电子的大得多。它在欠掺杂侧急剧增加,在那里涨落变得准一维。我们的分析是通用的,而非依赖于特定模型。不过,我们讨论了一些候选微观模型,包括耦合的强关联梯子模型,其中横向(梯子间)相刚度比纵向梯子内刚度低,以及接近向对密度波态转变时预期的各向异性超导涨落。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/77d3/10438889/6e361827bf76/pgad255f1.jpg

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