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dc.contributor.author
Willenberg, Benjamin
dc.contributor.author
Phillips, Christopher R.
dc.contributor.author
Pupeikis, Justinas
dc.contributor.author
Camenzind, Sandro L.
dc.contributor.author
Liebermeister, Lars
dc.contributor.author
Kohlhass, Robert B.
dc.contributor.author
Globisch, Björn
dc.contributor.author
Keller, Ursula
dc.date.accessioned
2024-06-11T08:50:15Z
dc.date.available
2024-06-08T07:45:44Z
dc.date.available
2024-06-11T08:50:15Z
dc.date.issued
2024-05-20
dc.identifier.issn
0003-6935
dc.identifier.issn
1559-128X
dc.identifier.issn
2155-3165
dc.identifier.other
10.1364/AO.522802
en_US
dc.identifier.uri
http://hdl.handle.net/20.500.11850/677264
dc.description.abstract
We investigate terahertz time-domain spectroscopy using a low-noise dual-frequency-comb laser based on a single spatially multiplexed laser cavity. The laser cavity includes a reflective biprism, which enables generation of a pair of modelocked output pulse trains with slightly different repetition rates and highly correlated noise characteristics. These two pulse trains are used to generate the THz waves and detect them by equivalent time sampling. The laser is based on Yb:CALGO, operates at a nominal repetition rate of 1.18 GHz, and produces 110 mW per comb with 77 fs pulses around 1057 nm. We perform THz measurements with Fe-doped photoconductive antennas, operating these devices with gigahertz 1 mu m lasers for the first time, to our knowledge, and obtain THz signal currents approximately as strong as those from reference measurements at 1.55 mu m and 80 MHz. We investigate the influence of the laser's timing noise properties on THz measurements, showing that the laser's timing jitter is quantitatively explained by power-dependent shifts in center wavelength. We demonstrate reduction in noise by simple stabilization of the pump power and show up to 20 dB suppression in noise by the combination of shared pumping and shared cavity architecture. The laser's ultra-low-noise properties enable averaging of the THz waveform for repetition rate differences from 1 kHz to 22 kHz, resulting in a dynamic range of 55 dB when operating at 1 kHz and averaging for 2 s. We show that the obtained dynamic range is competitive and can be well explained by accounting for the measured optical delay range, integration time, as well as the measurement bandwidth dependence of the noise from transimpedance amplification. These results will help enable a new approach to high-resolution THzTDS enabled by low-noise gigahertz dual-comb lasers. (c) 2024 Optica Publishing Group under the terms of the Optica
en_US
dc.language.iso
en
en_US
dc.publisher
Optica
en_US
dc.title
THz-TDS with gigahertz Yb-based dual-comb lasers: noise analysis and mitigation strategies
en_US
dc.type
Journal Article
dc.date.published
2024-05-17
ethz.journal.title
Applied Optics
ethz.journal.volume
63
en_US
ethz.journal.issue
15
en_US
ethz.journal.abbreviated
Appl. Opt.
ethz.pages.start
4144
en_US
ethz.pages.end
4156
en_US
ethz.grant
Next Generation Microscope Powered by a Dual-Comb Laser for Label-Free Imaging
en_US
ethz.grant
Dual-comb spectroscopy based on dual-comb-modelocked diode-pumped solid-state lasers
en_US
ethz.grant
Dual-comb laser driven terahertz spectrometer for industrial sensing
en_US
ethz.identifier.wos
ethz.identifier.scopus
ethz.publication.status
published
en_US
ethz.grant.agreementno
203709
ethz.grant.agreementno
180933
ethz.grant.agreementno
966718
ethz.grant.fundername
SNF
ethz.grant.fundername
SNF
ethz.grant.fundername
EC
ethz.grant.funderDoi
10.13039/501100001711
ethz.grant.funderDoi
10.13039/501100001711
ethz.grant.funderDoi
10.13039/501100000780
ethz.grant.program
Bridge - Proof of Concept
ethz.grant.program
Bridge - Discovery
ethz.grant.program
H2020
ethz.date.deposited
2024-06-08T07:45:52Z
ethz.source
WOS
ethz.eth
yes
en_US
ethz.availability
Metadata only
en_US
ethz.rosetta.installDate
2024-06-11T08:50:16Z
ethz.rosetta.lastUpdated
2024-06-11T08:50:16Z
ethz.rosetta.versionExported
true
ethz.COinS
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