Optical polarization analogue in free electrons beams
arXiv:2006.06284 · doi:10.1038/s41567-021-01163-w
Abstract
Fast electrons spectromicroscopies enable to measure quantitatively the optical response of excitations with unrivaled spatial resolution. However, due to their inherently scalar nature, electron waves cannot access to polarization-related quantities. In spite of promising attempts based on the conversion of concepts originating from singular optics (such as vortex beams), the definition of an optical polarization analogue for fast electrons has remained a dead letter. Here, we establish such an analogue as the dipole transition vector of the electron between two well-chosen singular wave states. We show that electron energy-loss spectroscopy (EELS) allows a direct measurement of the \textit{polarized} electromagnetic local density of states. In particular, in the case of circular polarization, it measures directly the local optical spin density. This work establishes EELS as a quantitative technique to tackle fundamental issues in nano-optics, such as super-chirality, the local polarization of dark excitations or polarization singularities at the nanoscale.
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Cited by in corpus (8)
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- Tailored high-contrast attosecond electron pulses for coherent excitation and scattering
- Inelastic Mach-Zehnder Interferometry with Free Electrons
- Optical Polarization Analogs in Inelastic Free Electron Scattering
- Selective probing of longitudinal and transverse plasmon modes with electron phase-matching
- Electron vortex beams for chirality probing at the nanoscale