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Dataset for “Self-injection locked laser via hollow-core fiber Fabry-Perot resonator”

Dataset for “Self-injection locked laser via hollow-core fiber Fabry-Perot resonator”
Dataset for “Self-injection locked laser via hollow-core fiber Fabry-Perot resonator”
This is dataset for 'Self-injection locked laser via hollow-core fiber Fabry-Perot resonator' to be published on Photonics Research Uploaded Archive (ZIP) includes 10 data files that are .txt format The figures are as follows: Fig. 2: Fig.2a Simulated frequency noise spectrum when considering self-injection locking noise (SIL) and thermal noise (TRN). Fig.2b Lorentzian linewidth as function of the HCF-FP length. Fig. 4: Fig.4aTransmitted signal through the HCF-FP measured over 50 MHz. Fig.4b Detail of transmission of single peak. Fig.6: Fig.6a Frequency error as a function of time achieved here and its comparison with the stability of a laser locked to an SMF delay line placed in a vacuum Fig.6b Allan deviation calculated from the data shown in (a) and its comparison to measurements reported by manufacturers of commercially-available narrow-linewidth lasers, including OE waves, which is also based on self-injection locking. Fig. 7 Measured frequency noise via strong self-injection ratio of -15 dB, together with free-running laser and measurement noise floor. Fig. 8 Measured frequency noise with different self-injection ratios. Fig. 9 Comparison of the measured and simulated frequency noise for injection ratio of -15 dB (green) and -30 dB (red). Fig. 10 RIN of the free running and SIL. Shot noise expected for 0 dBm power output is also shown.
Self-injection laser, Fabry-Perot, Hollow core fibre
University of Southampton
Ding, Meng
4ce864fb-eb5c-47d6-8902-7b3785a162d7
Feng, Zitong
1fe11e72-3606-441c-bac8-685fc2743df2
Komanec, Matej
be991afd-3cb0-458a-a7c8-4557051e2bcf
Zvanovec, Stanislav
037bcfba-8cc7-4f6f-8226-72d29fe7e636
Zhong, Ailing
4dd4add1-12d2-4e78-828b-a60d2b57ff83
Poletti, Francesco
9adcef99-5558-4644-96d7-ce24b5897491
Marra, Giuseppe
d76bb79b-27dd-4231-bdbc-d8c92cce88ea
Slavik, Radan
2591726a-ecc0-4d1a-8e1d-4d0fd8da8f7d
Ding, Meng
4ce864fb-eb5c-47d6-8902-7b3785a162d7
Feng, Zitong
1fe11e72-3606-441c-bac8-685fc2743df2
Komanec, Matej
be991afd-3cb0-458a-a7c8-4557051e2bcf
Zvanovec, Stanislav
037bcfba-8cc7-4f6f-8226-72d29fe7e636
Zhong, Ailing
4dd4add1-12d2-4e78-828b-a60d2b57ff83
Poletti, Francesco
9adcef99-5558-4644-96d7-ce24b5897491
Marra, Giuseppe
d76bb79b-27dd-4231-bdbc-d8c92cce88ea
Slavik, Radan
2591726a-ecc0-4d1a-8e1d-4d0fd8da8f7d

Ding, Meng, Feng, Zitong, Komanec, Matej, Zvanovec, Stanislav, Zhong, Ailing, Poletti, Francesco, Marra, Giuseppe and Slavik, Radan (2025) Dataset for “Self-injection locked laser via hollow-core fiber Fabry-Perot resonator”. University of Southampton doi:10.5258/SOTON/D3335 [Dataset]

Record type: Dataset

Abstract

This is dataset for 'Self-injection locked laser via hollow-core fiber Fabry-Perot resonator' to be published on Photonics Research Uploaded Archive (ZIP) includes 10 data files that are .txt format The figures are as follows: Fig. 2: Fig.2a Simulated frequency noise spectrum when considering self-injection locking noise (SIL) and thermal noise (TRN). Fig.2b Lorentzian linewidth as function of the HCF-FP length. Fig. 4: Fig.4aTransmitted signal through the HCF-FP measured over 50 MHz. Fig.4b Detail of transmission of single peak. Fig.6: Fig.6a Frequency error as a function of time achieved here and its comparison with the stability of a laser locked to an SMF delay line placed in a vacuum Fig.6b Allan deviation calculated from the data shown in (a) and its comparison to measurements reported by manufacturers of commercially-available narrow-linewidth lasers, including OE waves, which is also based on self-injection locking. Fig. 7 Measured frequency noise via strong self-injection ratio of -15 dB, together with free-running laser and measurement noise floor. Fig. 8 Measured frequency noise with different self-injection ratios. Fig. 9 Comparison of the measured and simulated frequency noise for injection ratio of -15 dB (green) and -30 dB (red). Fig. 10 RIN of the free running and SIL. Shot noise expected for 0 dBm power output is also shown.

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More information

Published date: January 2025
Keywords: Self-injection laser, Fabry-Perot, Hollow core fibre

Identifiers

Local EPrints ID: 497413
URI: http://eprints.soton.ac.uk/id/eprint/497413
PURE UUID: 11635af6-be1b-474e-aab5-8df3adc19893
ORCID for Francesco Poletti: ORCID iD orcid.org/0000-0002-1000-3083
ORCID for Radan Slavik: ORCID iD orcid.org/0000-0002-9336-4262

Catalogue record

Date deposited: 22 Jan 2025 17:42
Last modified: 19 Mar 2025 02:48

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Contributors

Creator: Meng Ding
Creator: Zitong Feng
Creator: Matej Komanec
Creator: Stanislav Zvanovec
Creator: Ailing Zhong
Creator: Francesco Poletti ORCID iD
Creator: Giuseppe Marra
Creator: Radan Slavik ORCID iD

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