Orbital Hall effect from orbital magnetic moments of Bloch states: the role of a new correction term

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Main Authors: Cysne, Tarik P., Souza, Ivo, Rappoport, Tatiana G.
Format: Preprint
Published: 2025
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author Cysne, Tarik P.
Souza, Ivo
Rappoport, Tatiana G.
author_facet Cysne, Tarik P.
Souza, Ivo
Rappoport, Tatiana G.
contents We present a rigorous derivation of the matrix elements of the orbital magnetic moment (OMM) of Bloch states. Our calculations include the Berry connection term in the k-derivatives of Bloch states, which was omitted in previous works. The resulting formula for the OMM matrix elements applies to any non-degenerate Bloch states within Hilbert space. We identify two new contributions: the first restores gauge covariance for non-degenerate states, while the second, being itself gauge covariant, can provide significant quantitative corrections depending on the system under study. We examine their impact on the orbital Hall effect in two bilayer systems: a 2H transition metal dichalcogenide bilayer and a biased bilayer graphene. In both cases, these new terms reduce the orbital Hall conductivity plateau compared with results that neglect them, suggesting that multi-layered van der Waals materials may be particularly susceptible to the derived OMM corrections. Our findings may contribute to the formal understanding of electronic OMM transport and to the conceptual foundations of the emerging field of orbitronics.
format Preprint
id arxiv_https___arxiv_org_abs_2511_03901
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Orbital Hall effect from orbital magnetic moments of Bloch states: the role of a new correction term
Cysne, Tarik P.
Souza, Ivo
Rappoport, Tatiana G.
Mesoscale and Nanoscale Physics
We present a rigorous derivation of the matrix elements of the orbital magnetic moment (OMM) of Bloch states. Our calculations include the Berry connection term in the k-derivatives of Bloch states, which was omitted in previous works. The resulting formula for the OMM matrix elements applies to any non-degenerate Bloch states within Hilbert space. We identify two new contributions: the first restores gauge covariance for non-degenerate states, while the second, being itself gauge covariant, can provide significant quantitative corrections depending on the system under study. We examine their impact on the orbital Hall effect in two bilayer systems: a 2H transition metal dichalcogenide bilayer and a biased bilayer graphene. In both cases, these new terms reduce the orbital Hall conductivity plateau compared with results that neglect them, suggesting that multi-layered van der Waals materials may be particularly susceptible to the derived OMM corrections. Our findings may contribute to the formal understanding of electronic OMM transport and to the conceptual foundations of the emerging field of orbitronics.
title Orbital Hall effect from orbital magnetic moments of Bloch states: the role of a new correction term
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2511.03901