Emergent phases in graphene flat bands.

Saisab Bhowmik, Arindam Ghosh, U Chandni
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Abstract

Electronic correlations in two-dimensional materials play a crucial role in stabilising emergent phases of matter. The realisation of correlation-driven phenomena in graphene has remained a longstanding goal, primarily due to the absence of strong electron-electron interactions within its low-energy bands. In this context, magic-angle twisted bilayer graphene has recently emerged as a novel platform featuring correlated phases favoured by the low-energy flat bands of the underlying moiré superlattice. Notably, the observation of correlated insulators and superconductivity, and the interplay between these phases have garnered significant attention. A wealth of correlated phases with unprecedented tunability was discovered subsequently, including orbital ferromagnetism, Chern insulators, strange metallicity, density waves, and nematicity. However, a comprehensive understanding of these closely competing phases remains elusive. The ability to controllably twist and stack multiple graphene layers has enabled the creation of a whole new family of moiré superlattices with myriad properties. Here, we review the progress and development achieved so far, encompassing the rich phase diagrams offered by these graphene-based moiré systems. Additionally, we discuss multiple phases recently observed in non-moiré multilayer graphene systems. Finally, we outline future opportunities and challenges for the exploration of hidden phases in this new generation of moiré materials.

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石墨烯平带中的新兴相位。
二维材料中的电子相关在稳定物质的新阶段方面发挥着至关重要的作用。在石墨烯中实现关联驱动现象一直是一个长期目标,这主要是由于石墨烯的低能段内不存在强电子-电子相互作用。在这种情况下,魔角扭曲双层石墨烯最近成为一种新型平台,其相关相受到底层摩尔超晶格低能平面带的青睐。值得注意的是,对相关绝缘体和超导性的观察已引起了极大的关注,导致旨在阐明这两种相的起源和相互作用的理论和实验研究取得了重大进展。随后,人们发现了大量具有前所未有的可调性的相关相,包括轨道铁磁性、切尔诺绝缘体、奇异金属性、密度波和向列性。然而,对这些紧密竞争的相位的全面了解仍然遥不可及。可控地扭曲和堆叠多个石墨烯层的能力使得全新的摩尔超晶格家族得以诞生,其无数特性正在被快速发现。在此,我们回顾了迄今为止所取得的进展和发展,包括这些基于石墨烯的摩尔体系所提供的丰富相图。此外,我们还讨论了最近在非漩涡多层石墨烯系统中观察到的多种相。最后,我们概述了探索新一代摩尔纹材料中隐藏相的未来机遇和挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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