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Laser & Photonics Review· 2026Q1

Temporal Faraday Effect Enabled by Floquet‐Induced Chirality

Neng Wang, Guo Ping Wang

Short summary

Researchers demonstrate a temporal Faraday effect using a time-modulated metamaterial that generates chirality via Floquet engineering, eliminating the need for magnetic fields or structural chirality.

AI-generated from the title and abstract; the full text is not read.

Key points

  • A temporal chiral metamaterial is created by time-modulating the principal axes of permittivity and permeability tensors.
  • Chirality and nonreciprocity are generated through Floquet modulation, not magnetic fields or structural chirality.
  • This mechanism results in a temporal Faraday effect, causing continuous rotation of light polarization in time.
  • The polarization rotation is programmable and invariant under spatial and temporal reversal.

AI-generated from the title and abstract; the full text is not read.

Abstract

ABSTRACT The Faraday effect is a hallmark of nonreciprocal light–matter interactions and traditionally requires magnetic bias or intrinsically chiral media. Here we introduce a temporal chiral metamaterial in which an effective chiral response is generated entirely by Floquet modulation, without magnetic fields or structurally chiral constituents. The medium is realized by periodically rotating the principal axes of the permittivity and permeability tensors in time. Using a nonlocal temporal effective medium theory derived from Hamiltonian homogenization, we show that the resulting chiral parameter is an odd function of the wavevector, giving rise to intrinsic nonreciprocity despite Onsager‐symmetric constitutive relations. This Floquet‐induced chirality produces a temporal Faraday effect, in which the polarization plane of a linearly polarized wave rotates continuously in time. The direction and magnitude of the rotation are programmable through the modulation sequence and remain invariant under both spatial and temporal reversal. Our work establishes Floquet‐induced chirality as a fundamentally new mechanism for nonreciprocal light control and opens a route to reconfigurable polarization manipulation in time‐modulated photonic systems.

The authors' abstract, as published at the source. Laser & Photonics Review, 2026 · DOI ↗

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Field: Electronic, Optical and Magnetic Materials

Electronic, Optical and Magnetic MaterialsMaterials Science