Imaging Tunable Luttinger Liquid Systems in van der Waals Heterostructures
Hongyuan Li, Ziyu Xiang, Tianle Wang, Mit H. Naik, Woochang Kim,, Jiahui Nie, Shiyu Li, Zhehao Ge, Zehao He, Yunbo Ou, Rounak Banerjee, Takashi, Taniguchi, Kenji Watanabe, Sefaattin Tongay, Alex Zettl, Steven G. Louie,, Michael P. Zaletel, Michael F. Crommie, Feng Wang

TL;DR
This paper demonstrates that layer-stacking domain walls in van der Waals heterostructures form tunable Luttinger liquid systems, revealing various quantum phases through advanced microscopy and electron density control.
Contribution
It introduces a novel approach to realize and image tunable Luttinger liquids in 2D heterostructures using STM, exploring different interaction regimes and quantum phases.
Findings
Single domain walls show Wigner crystallization at low density.
Periodic domain wall arrays exhibit 2D electron crystal and smectic liquid phases.
Electron density controls the transition between different quantum phases.
Abstract
One-dimensional (1D) interacting electrons are often described as a Luttinger liquid1-4 having properties that are intrinsically different from Fermi liquids in higher dimensions5,6. 1D electrons in materials systems exhibit exotic quantum phenomena that can be tuned by both intra- and inter-1D-chain electronic interactions, but their experimental characterization can be challenging. Here we demonstrate that layer-stacking domain walls (DWs) in van der Waals heterostructures form a broadly tunable Luttinger liquid system including both isolated and coupled arrays. We have imaged the evolution of DW Luttinger liquids under different interaction regimes tuned by electron density using a novel scanning tunneling microscopy (STM) technique. Single DWs at low carrier density are highly susceptible to Wigner crystallization consistent with a spin-incoherent Luttinger liquid, while at…
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Taxonomy
TopicsMechanical and Optical Resonators · Molecular Junctions and Nanostructures · 2D Materials and Applications
