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通过原子吸附物区分莫特绝缘体与平凡绝缘体

Distinguishing a Mott Insulator from a Trivial Insulator with Atomic Adsorbates.

作者信息

Lee Jinwon, Jin Kyung-Hwan, Yeom Han Woong

机构信息

Center for Artificial Low Dimensional Electronic Systems, Institute for Basic Science (IBS), Pohang 37673, Republic of Korea.

Department of Physics, Pohang University of Science and Technology, Pohang 37673, Republic of Korea.

出版信息

Phys Rev Lett. 2021 May 14;126(19):196405. doi: 10.1103/PhysRevLett.126.196405.

Abstract

In an electronic system with various interactions intertwined, revealing the origin of its many-body ground state is challenging and a direct experimental way to verify the correlated nature of an insulator has been lacking. Here we demonstrate a way to unambiguously distinguish a paradigmatic correlated insulator, a Mott insulator, from a trivial band insulator based on their distinct chemical behavior for a surface adsorbate using 1T-TaS_{2}, which has been debated between a spin-frustrated Mott insulator or a spin-singlet trivial insulator. We start from the observation of different sizes of spectral gaps on different surface terminations and show that potassium adatoms on these two surface layers behave in totally different ways. This can be straightforwardly understood from distinct properties of Mott and band insulators due to the fundamental difference of the half- and full-filled orbitals involved, respectively. This work not only solves an outstanding problem in this particularly interesting material but also provides a simple touchstone to identify the correlated ground state of electrons experimentally.

摘要

在一个各种相互作用相互交织的电子系统中,揭示其多体基态的起源具有挑战性,并且一直缺乏一种直接的实验方法来验证绝缘体的关联性质。在这里,我们展示了一种基于典型关联绝缘体(莫特绝缘体)与平凡带绝缘体对表面吸附质具有不同化学行为的方式,使用1T-TaS₂(其在自旋受挫的莫特绝缘体或自旋单重态平凡绝缘体之间存在争议)来明确区分它们。我们从观察不同表面终端上不同大小的能隙开始,并表明这两个表面层上的钾吸附原子表现出完全不同的行为。由于分别涉及的半填充和全填充轨道的根本差异,从莫特绝缘体和带绝缘体的不同性质可以直接理解这一点。这项工作不仅解决了这种特别有趣材料中的一个突出问题,还提供了一种简单的试金石,用于通过实验识别电子的关联基态。

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