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  4. Crossing of the Branch Cut: The Topological Origin of a Universal 2 pi-Phase Retardation in Non-Hermitian Metasurfaces
 
research article

Crossing of the Branch Cut: The Topological Origin of a Universal 2 pi-Phase Retardation in Non-Hermitian Metasurfaces

Colom, Remi
•
Mikheeva, Elena
•
Achouri, Karim  
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March 28, 2023
Laser & Photonics Reviews

Full wavefront control by photonic components requires that the spatial phase modulation on an incoming optical beam ranges from 0 to 2 pi. Because of their radiative coupling to the environment, all optical components are intrinsically non-Hermitian systems, often described by reflection and transmission matrices with complex eigenfrequencies. Here, it is shown that parity or time symmetry breaking-either explicit or spontaneous-moves the position of zero singularities of the reflection or transmission matrices from the real axis to the upper part of the complex frequency plane. A universal 0 to 2 pi-phase gradient of an output channel as a function of the real frequency excitation is thus realized whenever the discontinuity branch bridging a zero and a pole, that is, a pair of singularities, is crossing the real axis. This basic understanding is applied to engineer electromagnetic fields at interfaces, including, but not limited to, metasurfaces. Non-Hermitian topological features associated with exceptional degeneracies or branch cut crossing are shown to play a surprisingly pivotal role in the design of resonant photonic systems.

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Type
research article
DOI
10.1002/lpor.202200976
Web of Science ID

WOS:000956779100001

Author(s)
Colom, Remi
Mikheeva, Elena
Achouri, Karim  
Zuniga-Perez, Jesus
Bonod, Nicolas
Martin, Olivier J. F.  
Burger, Sven
Genevet, Patrice
Date Issued

2023-03-28

Publisher

WILEY-V C H VERLAG GMBH

Published in
Laser & Photonics Reviews
Subjects

Optics

•

Physics, Applied

•

Physics, Condensed Matter

•

Physics

•

metasurfaces

•

nanophotonics

•

resonant photonics

•

topological photonics

•

band achromatic metalens

•

huygens metasurfaces

•

exceptional points

•

total absorption

•

phase

•

light

•

polarization

•

reflection

•

resonances

•

efficiency

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
NAM  
Available on Infoscience
April 24, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/197147
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