论文标题

哈伯德模型的奇怪金属状态中的相互交织的条纹波动

Fluctuating intertwined stripes in the strange metal regime of the Hubbard model

论文作者

Huang, Edwin W., Liu, Tianyi, Wang, Wen O., Jiang, Hong-Chen, Mai, Peizhi, Maier, Thomas A., Johnston, Steven, Moritz, Brian, Devereaux, Thomas P.

论文摘要

在高温正常状态下,密切相关的电子系统具有各种知识的相关性。与有序参数定义的有序阶段不同,这些正常状态相通常是通过非常规的特性来定义的,例如奇怪的金属传输或光谱伪模型。表征正常状态下的微观相关性是为了阐明导致这些特性及其与基础状态秩序的联系的机制。在这里,我们使用行列式量子蒙特卡洛计算在哈伯德模型的奇怪金属法线状态下建立了交织在一起的电荷和自旋条。构成条纹的电荷和旋转密度波是波动的且较短的,但它们遵守了相互的可辨别性关系,并保持显微镜相互关联,这是通过测量三点旋转旋转孔相关函数的测量来证明的。我们的发现表明,多体数值模拟揭示了定义物质量子状态的微观相关性的能力。

Strongly correlated electron systems host a variety of poorly understood correlations in their high temperature normal state. Unlike ordered phases defined by order parameters, these normal state phases are often defined through unconventional properties such as strange metallic transport or spectroscopic pseudogaps. Characterizing the microscopic correlations in the normal state is necessary to elucidate mechanisms that lead to these properties and their connection to ground state orders. Here we establish the presence of intertwined charge and spin stripes in the strange metal normal state of the Hubbard model using determinant quantum Monte Carlo calculations. The charge and spin density waves constituting the stripes are fluctuating and short-ranged, yet they obey a mutual commensurability relation and remain microscopically interlocked, as evidenced through measurements of three-point spin-spin-hole correlation functions. Our findings demonstrate the ability of many-body numerical simulations to unravel the microscopic correlations that define quantum states of matter.

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