Moir\'e modulated quantum spin liquid candidate 1T-TaSe$_2$
Abstract
Quantum spin liquids are quantum phases of matter featuring collectively entangled states and emergent fractional many-body excitations. While methods exist to probe three-dimensional quantum spin liquids experimentally, these techniques lack the sensitivity to probe two-dimensional quantum spin liquids. This seriously hampers the study of potential monolayer quantum spin liquid candidates such as -RuCl and 1T-TaSe. Scanning tunneling microscopy (STM) and spectroscopy (STS) have recently been suggested as promising probes of the quantum spin liquid state, as they can access the spinon spectrum through inelastic tunneling spectroscopy (IETS). In this work, we employ this approach on the quantum spin liquid candidate material 1T-TaSe and directly measure its low-energy inelastic excitations. We observe the emergence of a reconstruction driven by the substrate, equivalent spectroscopy across all spin sites and coexistence of zero and finite energy excitations. We show that these observations are consistent with a modulated spin liquid ground state. Our results demonstrate that IETS provides a powerful route to obtain atomic-scale insight into the magnetic excitations of two-dimensional materials, allowing to explore the effects of moir\'e modulations on potential quantum liquid phases.
Keywords
Cite
@article{arxiv.2511.03311,
title = {Moir\'e modulated quantum spin liquid candidate 1T-TaSe$_2$},
author = {Ziying Wang and Adolfo O. Fumega and Ana Vera Montoto and Mohammad Amini and Büşra Gamze Arslan and Aleš Cahlík and Yuxiao Ding and Jose L. Lado and Robert Drost and Peter Liljeroth},
journal= {arXiv preprint arXiv:2511.03311},
year = {2025}
}