Rashba engineering at van der Waals interfaces
Abstract
Two-dimensional transition metal dichalcogenide (TMD) interfaces offer a versatile platform for studying emergent quantum phenomena and enabling novel device functionalities. When distinct TMD monolayers are stacked vertically or laterally stitched, their interfaces can exhibit unique electronic band alignments, giving rise to long-lived interlayer excitons, charge transfer effects, and moir\'e superlattices with correlated states. Here, we demonstrate that the interface between a large variety of two different epitaxially grown TMD monolayers controls the intensity and sign of the Rashba spin splitting, which is probed using THz spintronic emission. Optimized TMD heterobilayers, such as HfSe/PtSe, show enhanced THz emission that surpass the spin-to-charge conversion efficiency of bulk TMDs, confirming the presence of Rashba states with large spin splitting at the interface. By combining spin- and angle-resolved photoemission spectroscopy with density functional theory, we reveal that the electronic hybridization between the two different TMD monolayers gives rise to extended in-gap states with strong Rashba spin-orbit coupling. The choice of TMD layers enables to engineer the sign and strength of spin-to-charge conversion in van der Waals heterobilayers opening up perspectives to build efficient and tunable THz spintronic emitters.
Cite
@article{arxiv.2605.08228,
title = {Rashba engineering at van der Waals interfaces},
author = {Rahul Sharma and Soumya Mukherjee and Fatima Ibrahim and Gaétan Verdierre and Libor Vojáček and Martin Mičica and Sylvain Massabeau and Oliver Paull and Vincent Polewczyk and Nicola Marzari and Alain Marty and Isabelle Gomes de Moraes and Frédéric Bonell and Juliette Mangeney and Jérôme Tignon and Gauthier Krizman and Anupam Jana and Jun Fujii and Ivana Vobornik and Federico Mazzola and Jing Li and Leticia Melo Costa and Olivier Renault and Adrien Michon and Henri Jaffrès and Jean-Marie George and Mairbek Chshiev and Sukhdeep Dhillon and Matthieu Jamet},
journal= {arXiv preprint arXiv:2605.08228},
year = {2026}
}
Comments
25 pages, 5 figures