Sector-Resolved Winding Selection Rules for Structured-Light-Driven dc Currents
Tomohiro Tamaya, Kenichi L. Ishikawa
Abstract
Structured light can generate electronic dc currents with azimuthal winding, yet the rules governing their winding order m remain unclear. Here we identify sector-resolved winding selection rules using graphene as a clean two-dimensional platform. By decomposing the current response into local and gradient sectors at the current-operator level, we show that the winding order is determined not by the optical orbital angular momentum alone, but by the angular structure of the corresponding current operators together with projection onto the azimuthal direction. For scalar Laguerre-Gaussian beams, linear polarization yields m=|1| in the local sector and m=||,|2| in the gradient sector, whereas circular polarization with helicity σ=1 selects m=|-σ| in the local sector and m=|+2σ| in the gradient sector. Numerical time-evolution calculations verify these rules and further show that helicity can select an m=0 branch, producing an azimuthally uniform circulating current whose radial profile determines the axial magnetic field Bz(z). Our results provide a sector-resolved organizing principle for classifying and controlling structured-light-driven dc currents with tailored winding structures.
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