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Single-cycle infrared waveform control

delete2022-05-26
delete37
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OA
AI
P
Philipp Steinleitner
N
Nathalie Nagl
M
Maciej Kowalczyk *
J
Jinwei Zhang
V
Vladimir Pervak
C
Christina Höfer
A
Arkadiusz Hudzikowski
S
Sotor, Jaroslaw
A
Alexander Weigel
F
Ferenc Krausz
K
Ka Fai Mak *
DOI:10.1038/s41566-022-01001-2delete
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Abstract

Abstract

En 中文
Continuously adjustable single-cycle waveform spanning from 0.9 to 12.0 mu m is obtained by cascaded intrapulse difference-frequency generation in a ZnGeP2 crystal. The cascade-associated phase response-distinct for different spectral bands-provides a new tuning parameter for waveform adjustment. Tailoring the electric-field waveform of ultrashort light pulses forms the basis for controlling nonlinear optical phenomena on their genuine, attosecond timescale. Here we extend waveform control from the visible and near-infrared-where it was previously demonstrated-to the mid-infrared spectral range. Our approach yields single-cycle infrared pulses over several octaves for the first time. Sub-10-fs pulses from a carrier-envelope-phase-stabilized, Kerr-lens-mode-locked, diode-pumped Cr:ZnS laser drive cascaded intrapulse difference-frequency generation and control the electric-field evolution of the resulting coherent emission over 0.9-12.0 mu m. Sub-cycle field control in this wavelength range will be instrumental for launching and steering few-femtosecond electron/hole wavepackets in low-gap materials, extending the bandwidth of electronic signal processing to multi-terahertz frequencies, as well as for electric-field-resolved molecular fingerprinting of biological systems.
Keywords:
MU-M
GENERATION
PULSES
SPECTROSCOPY
TRANSIENTS
FIELDS
LASER
MOLECULE

Journal

Nature Photonics cover
Nature Photonics
IF:
32.9
Papers:
4.3K
Citations:
6.1W

Organization

U
University of Munich
Scholars:
5.7W
Papers: 4.2W
Citations: 68
M
Max Planck Society
Scholars:
8.2W
Papers: 7.7W
Citations: 3.3W