Gain-Momentum Locking in Chiral-Gain Media
Jo\~ao C. Serra, Nader Engheta, M\'ario G. Silveirinha

TL;DR
This paper introduces gain-momentum locking in chiral-gain media, a phenomenon where surface plasmons are directionally amplified or suppressed, enabling advanced control of unidirectional light propagation and orbital angular momentum generation.
Contribution
It reveals a novel gain-momentum locking effect at the boundary of chiral-gain media, combining spin-momentum locking with polarization-sensitive non-Hermitian responses.
Findings
Surface plasmons exhibit direction-dependent amplification or attenuation.
The effect enables unidirectional wave control and lossless edge-wave propagation.
Potential applications include generating light with intrinsic orbital angular momentum.
Abstract
Conventional optical materials are characterized by either a dissipative response, which results in polarization-independent absorption, or by a gain response that leads to wave amplification. In this work, we study a peculiar class of materials with chiral-gain properties, where gain selectively amplifies waves of one polarization handedness, while dissipation suppresses the opposite handedness. We uncover a novel phenomenon, gain-momentum locking, at the boundary of chiral-gain media, where surface plasmons are amplified or attenuated based on their direction of propagation. This effect, driven by the interplay between spin-momentum locking and polarization-sensitive non-Hermitian responses, enables precise control over unidirectional wave propagation. Our findings open the door to photonic devices with unprecedented capabilities, such as lossless unidirectional edge-wave propagation…
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Taxonomy
TopicsQuantum optics and atomic interactions · Photorefractive and Nonlinear Optics · Random lasers and scattering media
