Magnetic-field-enhanced laser-induced electron coherence in 2D magnetic materials

Abstract Laser-induced electron coherence is a fascinating behavior in quantum materials. However, to date, viable approaches to control this excited-state behavior remain lacking. Here, we overturn this by realizing magnetic-field-controlled spatial self-phase modulation (SSPM), a third-order nonlinear optical response. Light-matter interactions in ferromagnetic VSe2 and diamagnetic graphene are observed to be precisely controlled by an external magnetic field, achieving an intriguing anisotropic SSPM, accompanied by prominent optical birefringence. We attribute this magnetic-field-controlled SSPM to the magnetic field-induced broken symmetry in the collective behavior of flakes. Significantly, the nonlinear optical coefficient χ(3) is enhanced by 58%, which breaks the record of largest χ(3). Furthermore, we demonstrate a magnetic-field-controlled all-optical switch based on SSPM in VSe2, achieving an enhancement of 340% in the signal-to-control intensity ratio (manifesting the weak-light-control-strong-light capability). Our findings ushers in a new paradigm, controlling (rather than merely monitoring) the laser-induced electron coherence in SSPM, which enables the next generation of all-optical switching based on SSPM.

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Publication Details

Journal
National Science Review
Published
2026-09-11
DOI
https://doi.org/10.1093/nsr/nwag594
Primary Topic
Topological Materials and Phenomena
Type
article
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Magnetic-field-enhanced laser-induced electron coherence in 2D magnetic materials

Jimin Zhao, Sheng Meng, Yixuan Huang
National Science Review
Topological Materials and Phenomena
article

Magnetic-field-enhanced laser-induced electron coherence in 2D magnetic materials

Jimin Zhao, Sheng Meng, Yixuan Huang
article en

Abstract

Abstract Laser-induced electron coherence is a fascinating behavior in quantum materials. However, to date, viable approaches to control this excited-state behavior remain lacking. Here, we overturn this by realizing magnetic-field-controlled spatial self-phase modulation (SSPM), a third-order nonlinear optical response. Light-matter interactions in ferromagnetic VSe2 and diamagnetic graphene are observed to be precisely controlled by an external magnetic field, achieving an intriguing anisotropic SSPM, accompanied by prominent optical birefringence. We attribute this magnetic-field-controlled SSPM to the magnetic field-induced broken symmetry in the collective behavior of flakes. Significantly, the nonlinear optical coefficient χ(3) is enhanced by 58%, which breaks the record of largest χ(3). Furthermore, we demonstrate a magnetic-field-controlled all-optical switch based on SSPM in VSe2, achieving an enhancement of 340% in the signal-to-control intensity ratio (manifesting the weak-light-control-strong-light capability). Our findings ushers in a new paradigm, controlling (rather than merely monitoring) the laser-induced electron coherence in SSPM, which enables the next generation of all-optical switching based on SSPM.

National Science Review
Chinese Academy of Sciences (CN), Physical Sciences (United States) (US), Songshan Lake Materials Laboratory (CN), FZU ‒ Institute of Physics of the Academy of Sciences of the Czech Republic (CZ), University of Chinese Academy of Sciences (CN)
Openalex Percentile: Top 13%
Topological Materials and Phenomena
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