Optical Momentum, Spin, and Angular Momentum in Dispersive Media
Date
2017
Authors
Bliokh, Konstantin
Bekshaev, A.Y.
Nori, Franco
Journal Title
Journal ISSN
Volume Title
Publisher
American Physical Society
Abstract
We examine the momentum, spin, and orbital angular momentum of structured monochromatic optical fields in dispersive inhomogeneous isotropic media. There are two bifurcations in this general problem: the Abraham-Minkowski dilemma and the kinetic (Poynting-like) versus canonical (spin-orbital) pictures. We show that the kinetic Abraham momentum describes the energy flux and group velocity of the wave in the medium. At the same time, we introduce novel canonical Minkowski-type momentum, spin, and orbital angular momentum densities of the field. These quantities exhibit fairly natural forms, analogous to the Brillouin energy density, as well as multiple advantages as compared with previously considered formalisms. As an example, we apply this general theory to inhomogeneous surface plasmon-polariton (SPP) waves at a metal-vacuum interface and show that SPPs carry a "supermomentum," proportional to the wave vector k(p) > omega/c, and a transverse spin, which can change its sign depending on the frequency omega.
Description
Keywords
Citation
Collections
Source
Physical Review Letters
Type
Journal article
Book Title
Entity type
Access Statement
Open Access