Tomonaga-Luttinger liquid in a box: electrons confined within MoS$_2$ mirror twin boundaries
Abstract
Two- or three-dimensional metals are usually well described by weakly interacting, fermionic quasiparticles. This concept breaks down in one dimension due to strong Coulomb interactions. There, low-energy electronic excitations are expected to be bosonic collective modes, which fractionalize into independent spin and charge density waves. Experimental research on one-dimensional metals is still hampered by their difficult realization, their limited accessibility to measurements, and by competing or obscuring effects such as Peierls distortions or zero bias anomalies. Here we overcome these difficulties by constructing a well-isolated, one-dimensional metal of finite length present in MoS mirror twin boundaries. Using scanning tunneling spectroscopy we measure the single-particle density of the interacting electron system as a function of energy and position in the 1D box. Comparison to theoretical modeling provides unambiguous evidence that we are observing spin-charge separation in real space.
Keywords
Cite
@article{arxiv.1903.08908,
title = {Tomonaga-Luttinger liquid in a box: electrons confined within MoS$_2$ mirror twin boundaries},
author = {Wouter Jolie and Clifford Murray and Philipp S. Weiß and Joshua Hall and Fabian Portner and Nicolae Atodiresei and Arkady V. Krasheninnikov and Carsten Busse and Hannu-Pekka Komsa and Achim Rosch and Thomas Michely},
journal= {arXiv preprint arXiv:1903.08908},
year = {2019}
}
Comments
13 pages, 8 figures