arXiv · 2606.16676
Optical vortex probe of loop-current chirality in moir\'e materials
Abstract
We propose a symmetry-resolved optical probe of intrinsic loop-current chirality in moir\'e materials, with twisted bilayer graphene as a representative realization. Interlayer interference generates chiral electronic circulation on triangular plaquettes, giving rise to an intrinsic geometric chirality that enters the second-order response through a $C_3$-selected angular harmonic of the Berry curvature and can be isolated by the orbital-angular-momentum difference $\Delta\ell$ of interfering optical vortex beams. When moir\'e $C_3$ symmetry is preserved, the intrinsic contribution appears in the $\Delta\ell=3$ channel of the helicity-dependent dc photocurrent, whereas $C_3$-breaking perturbations activate additional channels. These results establish angular-momentum-resolved nonlinear optics as a route to probing geometric chirality in moir\'e and other symmetry-engineered quantum materials.
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Nobuhiko Yokoshi, Akihito Kato. 2026-06-15. Optical vortex probe of loop-current chirality in moir\'e materials. https://doi.org/10.1103/dlgp-bgbb
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