Graphene-driven correlated electronic states in one dimensional defects within WS2
Abstract
Abstract Tomonaga-Luttinger liquid (TLL) behavior in one-dimensional systems has been predicted and shown to occur at semiconductor-to-metal transitions within two-dimensional materials. Reports of one-dimensional defects hosting a Fermi liquid or a TLL have suggested a dependence on the underlying substrate, however, unveiling the physical details of electronic contributions from the substrate require cross-correlative investigation. Here, we study TLL formation within defectively engineered WS 2 atop graphene, where band structure and the atomic environment is visualized with nano angle-resolved photoelectron spectroscopy, scanning tunneling microscopy and spectroscopy, and non-contact atomic force microscopy. Correlations between the local density of states and electronic band dispersion elucidated the electron transfer from graphene into a TLL hosted by one-dimensional metal (1DM) defects. It appears that the vertical heterostructure with graphene and the induced charge transfer from graphene into the 1DM is critical for the formation of a TLL.
Article Details
Authors (22)
Antonio Rossi
John C. Thomas
Johannes T. Küchle
Elyse Barré
Zhuohang Yu
Da Zhou
Shalini Kumari
Hsin-Zon Tsai
Ed Wong
Chris Jozwiak
Advanced Light Source, Lawrence Berkeley National Laboratory
Aaron Bostwick
Advanced Light Source, Lawrence Berkeley National Laboratory
Joshua A. Robinson
Mauricio Terrones
Archana Raja
Molecular Foundry
Adam Schwartzberg
D. Frank Ogletree
Jeffrey B. Neaton
Michael F. Crommie
Francesco Allegretti
Willi Auwärter
Eli Rotenberg
Advanced Light Source, Lawrence Berkeley National Laboratory
Alexander Weber-Bargioni