Unveiling orbital optical chirality through multipolar chiral light-matter interaction
Shun Hashiyada, An'an Wu, Yoshito Y. Tanaka

TL;DR
This paper demonstrates that optical chirality can originate from the orbital angular momentum of light, revealing higher-order multipolar chiral responses and establishing a new form of optical chirality called orbital optical chirality.
Contribution
It introduces the concept of orbital optical chirality driven by OAM, expanding the understanding of chiral light-matter interactions beyond the traditional dipolar framework.
Findings
Orbital angular momentum can induce chiral responses even when spin optical chirality vanishes.
Spectral profiles of quadrupole resonances are modulated by OAM sign.
Orbital contributions dominate over spin in chiral light-matter interactions.
Abstract
Chiral light-matter interactions have traditionally been understood in terms of electric-magnetic dipolar interference driven by light with spin angular momentum. Here, we show that optical chirality can also originate from the orbital angular momentum (OAM) of light, giving rise to higher-order multipolar chiral responses. Using a twisted gold nanorod dimer and tightly focused circularly polarized optical vortex beams carrying spin and orbital angular momenta of the same sign, we measure spectrally and spatially resolved chiral dichroism signals that persist even where spin optical chirality vanishes, revealing a quadrupole-mediated chiral interaction driven by OAM. The spectra reveal clear quadrupole resonances whose spectral profile is strongly modulated by the OAM sign, demonstrating an OAM-driven chiral interaction. Crucially, the signal satisfies optical reciprocity, ruling out…
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Taxonomy
TopicsOrbital Angular Momentum in Optics · Metamaterials and Metasurfaces Applications · Strong Light-Matter Interactions
