Engineering 2D square lattice Hubbard models in 90$^\circ$ twisted Ge/SnX (X=S, Se) moir\'e supperlattices
Qiaoling Xu, Ammon Fischer, Nicolas Tancogne-Dejean, Tao Zhang, Emil Vi\~nas Bostr\"om, Martin Claassen, Dante M. Kennes, Angel Rubio, and Lede Xian

TL;DR
This paper proposes a new method to realize tunable square lattice Hubbard models using 90-degree twisted Ge/SnX moire superlattices, enabling exploration of correlated electron phenomena like unconventional superconductivity.
Contribution
It introduces a feasible scheme to construct moire square lattices with controllable parameters using twisted 2D materials, demonstrated with first-principles calculations.
Findings
Lowest conduction flat band described by a square lattice Hubbard model.
Twisted double bilayer GeSe exhibits strong frustration and potential for unconventional superconductivity.
The scheme offers a new platform for studying rich phases of correlated electron systems.
Abstract
Due to the large-period superlattices emerging in moire two-dimensional (2D) materials, electronic states in such systems exhibit low energy flat bands that can be used to simulate strongly correlated physics in a highly tunable setup. While many investigations have thus far focused on moire flat bands and emergent correlated electron physics in triangular, honeycomb and quasi-one-dimensional lattices, tunable moire realizations of square lattices subject to strong correlations remain elusive. Here we propose a feasible scheme to construct moire square lattice systems by twisting two or more layers of 2D materials in a rectangular lattice by 90 degrees. We demonstrate the concept with twisted GeX/SnX (X=S, Se) moire superlattices and calculate their electronic structures from first principles. We show that the lowest conduction flat band in these systems can be described by a square…
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Taxonomy
TopicsPhotonic and Optical Devices · Optical Network Technologies
