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Nanometric probing with a femtosecond, intra-cavity standing wave

delete2024-11-28
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OA
AI
T
Tobias Heldt *
J
J.-H. Oelmann
L
Lennart Guth
N
Nick Lackmann
L
Lukas Matt
T
Thomas Pfeifer
J
J. R. Crespo López-Urrutia
DOI:10.1515/nanoph-2024-0332delete
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Abstract

Abstract

En 中文
Optical standing waves are intrinsically nanometric, spatially fixed interference-field patterns. At a commensurate scale, metallic nanotips serve as coherent, atomic-sized electron sources. Here, we explore the localized photofield emission from a tungsten nanotip with a transient standing wave. It is generated within an optical cavity with counter-propagating femtosecond pulses from a near-infrared, 100-MHz frequency comb. Shifting the phase of the standing wave at the tip reveals its nodes and anti-nodes through a strong periodic modulation of the emission current. We find the emission angles to be distinct from those of a traveling wave, and attribute this to the ensuing localization of emission from different crystallographic planes. Supported by a simulation, we find that the angle of maximum field enhancement is controlled by the phase of the standing wave. Intra-cavity nanotip interaction not only provides higher intensities than in free-space propagation, but also allows for structuring the light field even in the transverse direction by selection of high-order cavity modes.
Keywords:
nanotip
strong-field
electron emission
ultrafast
standing wave
cavity

Journal

Nanophotonics cover
Nanophotonics
IF:
6.6
Papers:
2.9K
Citations:
1.6W

Organization

M
Max Planck Society
Scholars:
8.2W
Papers: 7.7W
Citations: 3.3W