Ultrafast Faraday rotation probe of chiral phonon-polaritons in LiNbO 3

A strong magnetic response in materials after time reversal symmetry breaking excitation of circular ionic motion may open avenues for ultrafast control. By combining a pair of perpendicularly polarized terahertz pulses with the right relative delay, we create a chiral terahertz driving field to excite chiral phonon-polaritons in LiNbO 3 . The magnitude of the ultrafast Faraday rotation probe matches what we would expect from an internal magnetization of ∼10 μ N per unit cell, which would require an external magnetic field in excess of 10 Tesla to produce. The Faraday rotation signal switches direction when the input terahertz pulse is changed from left- to right-circular polarization, indicating a change in magnetization direction. In addition, we improve upon previous experiments by using a differential chopping scheme to remove signals arising from linearly polarized terahertz components that can contaminate the Faraday signal. Models show that chiral atomic motion combines with the inverse Faraday effect to induce a magnetic moment in nonmagnetic LiNbO 3 .

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Publication Details

Journal
Science Advances
Published
2026-09-04
DOI
https://doi.org/10.1126/sciadv.aec8970
Primary Topic
Quantum optics and atomic interactions
Type
article
Field-Weighted Citation Impact
0.00

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article

Ultrafast Faraday rotation probe of chiral phonon-polaritons in LiNbO 3

Matthew J. Lutz, Clayton D. Moss, Aldair Alejandro, Jeremy A. Johnson et al.
Science Advances
Quantum optics and atomic interactions
article

Ultrafast Faraday rotation probe of chiral phonon-polaritons in LiNbO 3

Matthew J. Lutz, Clayton D. Moss, Aldair Alejandro, Jeremy A. Johnson, Megan F. Biggs, Sin-hang (Enoch) Ho
article en

Abstract

A strong magnetic response in materials after time reversal symmetry breaking excitation of circular ionic motion may open avenues for ultrafast control. By combining a pair of perpendicularly polarized terahertz pulses with the right relative delay, we create a chiral terahertz driving field to excite chiral phonon-polaritons in LiNbO 3 . The magnitude of the ultrafast Faraday rotation probe matches what we would expect from an internal magnetization of ∼10 μ N per unit cell, which would require an external magnetic field in excess of 10 Tesla to produce. The Faraday rotation signal switches direction when the input terahertz pulse is changed from left- to right-circular polarization, indicating a change in magnetization direction. In addition, we improve upon previous experiments by using a differential chopping scheme to remove signals arising from linearly polarized terahertz components that can contaminate the Faraday signal. Models show that chiral atomic motion combines with the inverse Faraday effect to induce a magnetic moment in nonmagnetic LiNbO 3 .

Science AdvancesVol. 12(36)
Brigham Young University (US)
Gordon and Betty Moore Foundation
Sustainable cities and communities
Openalex Percentile: Top 13%
Quantum optics and atomic interactions
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Ultrafast Faraday rotation probe of chiral phonon-polaritons in LiNbO 3 — Matthew J. Lutz, Clayton D. Moss, et al. · Science Advances (2026) | TGRS Research Map | TGRS