From strong to weak correlations in breathing-mode kagome van der Waals materials: Nb$_3$(F,Cl,Br,I)$_8$ as a robust and versatile platform for many-body engineering
Joost Aretz, Sergii Grytsiuk, Xiaojing Liu, Giovanna Feraco, Chrystalla Knekna, Muhammad Waseem, Zhiying Dan, Marco Bianchi, Philip Hofmann, Mazhar N. Ali, Mikhail I. Katsnelson, Antonija Grubi\v{s}i\'c-\v{C}abo, Hugo U. R. Strand, Erik G. C. P. van Loon, Malte R\"osner

TL;DR
This study combines theoretical modeling and experimental validation to analyze correlation effects in Nb3(X,F,Cl,Br,I)8 kagome van der Waals materials, revealing tunable phases and magnetic properties relevant for many-body engineering.
Contribution
It introduces a new material-specific many-body model library and experimentally confirms correlation degrees, advancing understanding of phase control in kagome van der Waals materials.
Findings
Nb3I8 is a weakly correlated insulator
Nb3Br8 and Nb3Cl8 are strongly correlated insulators
Nb3F8 is a Mott insulator
Abstract
By combining ab initio downfolding with cluster dynamical mean-field theory, we study the degree of correlations in monolayer, bilayer and bulk breathing-mode kagome van der Waals materials Nb(F,Cl,Br,I). Our new material-specific many-body model library shows that in low-temperature bulk structures the Coulomb correlation strength steadily increases from I to F, allowing us to identify NbI as a weakly correlated insulator, NbBr and NbCl as strongly correlated insulators, and NbF as a prototypical bulk Mott-insulator. Angle-resolved photoemission spectroscopy measurements comparing NbBr and NbI allow us to experimentally confirm these findings by revealing spectroscopic footprints of the degree of correlation. Our calculations uncover how the thickness and the stacking affect the degree of correlations and predict that the entire…
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Taxonomy
TopicsQuantum, superfluid, helium dynamics · Advanced Condensed Matter Physics · Cold Atom Physics and Bose-Einstein Condensates
