Dreher, Pascal; Janoschka, David; Giessen, Harald; Schützhold, Ralf; Davis, Timothy J.; Horn-von Hoegen, Michael; Meyer zu Heringdorf, Frank:
Momentum space separation of quantum path interferences between photons and surface plasmon polaritons in nonlinear photoemission microscopy
In: Nanophotonics (2024), in press
2024article/chapter in journalOA Gold
Physics (incl. Astronomy)Faculty of PhysicsScientific institutes » Center for Nanointegration Duisburg-Essen (CENIDE)
Related: 1 publication(s)
Title in English:
Momentum space separation of quantum path interferences between photons and surface plasmon polaritons in nonlinear photoemission microscopy
Author:
Dreher, PascalUDE
LSF ID
60601
ORCID
0000-0001-8975-1983ORCID iD
Other
connected with university
corresponding author
;
Janoschka, DavidUDE
LSF ID
57798
ORCID
0000-0002-4311-330XORCID iD
Other
connected with university
;
Giessen, Harald;Schützhold, RalfUDE
GND
123220114
LSF ID
49693
Other
connected with university
;
Davis, Timothy J.;Horn-von Hoegen, MichaelUDE
GND
1201039908
LSF ID
10366
ORCID
0000-0003-0324-3457ORCID iD
Other
connected with university
;
Meyer zu Heringdorf, FrankUDE
LSF ID
48700
ORCID
0000-0002-5878-2012ORCID iD
Other
connected with university
Year of publication:
2024
Open Access?:
OA Gold
Web of Science ID
Note:
OA Förderung 2024
Note:
in press
Language of text:
English
Keyword, Topic:
PEEM; surface plasmon polaritons; photoemission
Type of resource:
Text

Abstract in English:

Quantum path interferences occur whenever multiple equivalent and coherent transitions result in a common final state. Such interferences strongly modify the probability of a particle to be found in that final state, a key concept of quantum coherent control. When multiple nonlinear and energy-degenerate transitions occur in a system, the multitude of possible quantum path interferences is hard to disentangle experimentally. Here, we analyze quantum path interferences during the nonlinear emission of electrons from hybrid plasmonic and photonic fields using time-resolved photoemission electron microscopy. We experimentally distinguish quantum path interferences by exploiting the momentum difference between photons and plasmons and through balancing the relative contributions of their respective fields. Our work provides a fundamental understanding of the nonlinear photon-plasmon-electron interaction. Distinguishing emission processes in momentum space, as introduced here, could allow nano-optical quantum-correlations to be studied without destroying the quantum path interferences.