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铜酸盐赝能隙相中成对密度波态的散射干涉特征。

Scattering interference signature of a pair density wave state in the cuprate pseudogap phase.

作者信息

Wang Shuqiu, Choubey Peayush, Chong Yi Xue, Chen Weijiong, Ren Wangping, Eisaki H, Uchida S, Hirschfeld Peter J, Davis J C Séamus

机构信息

Clarendon Laboratory, University of Oxford, Oxford, UK.

Institut für Theoretische Physik III, Ruhr-Universität Bochum, Bochum, Germany.

出版信息

Nat Commun. 2021 Oct 19;12(1):6087. doi: 10.1038/s41467-021-26028-x.

Abstract

An unidentified quantum fluid designated the pseudogap (PG) phase is produced by electron-density depletion in the CuO antiferromagnetic insulator. Current theories suggest that the PG phase may be a pair density wave (PDW) state characterized by a spatially modulating density of electron pairs. Such a state should exhibit a periodically modulating energy gap [Formula: see text] in real-space, and a characteristic quasiparticle scattering interference (QPI) signature [Formula: see text] in wavevector space. By studying strongly underdoped BiSrCaDyCuO at hole-density ~0.08 in the superconductive phase, we detect the 8a-periodic [Formula: see text] modulations signifying a PDW coexisting with superconductivity. Then, by visualizing the temperature dependence of this electronic structure from the superconducting into the pseudogap phase, we find the evolution of the scattering interference signature [Formula: see text] that is predicted specifically for the temperature dependence of an 8a-periodic PDW. These observations are consistent with theory for the transition from a PDW state coexisting with d-wave superconductivity to a pure PDW state in the BiSrCaDyCuO pseudogap phase.

摘要

一种被称为赝能隙(PG)相的未确定量子流体是由CuO反铁磁绝缘体中的电子密度耗尽产生的。当前理论表明,PG相可能是一种对密度波(PDW)态,其特征是电子对的密度在空间上调制。这样的状态在实空间中应表现出周期性调制的能隙[公式:见正文],在波矢空间中表现出特征性的准粒子散射干涉(QPI)特征[公式:见正文]。通过研究超导相中空穴密度约为0.08的强欠掺杂BiSrCaDyCuO,我们检测到了8a周期[公式:见正文]调制,这表明PDW与超导共存。然后,通过观察这种电子结构从超导相到赝能隙相的温度依赖性,我们发现了散射干涉特征[公式:见正文]的演变,这是专门针对8a周期PDW的温度依赖性所预测的。这些观察结果与BiSrCaDyCuO赝能隙相中从与d波超导共存的PDW态到纯PDW态转变的理论一致。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dab0/8526682/6e2ccb7ed519/41467_2021_26028_Fig1_HTML.jpg

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