Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/111089
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Title: Isolator-free quantum dot comb lasers with optical feedback enhanced DWDM transmission
Authors: Cui, X
Chen, J 
Huang, J
Yang, B
Qin, J
Wang, W
Duan, J
Wang, T
Wang, Z
Zhang, J
Issue Date: Oct-2024
Source: APL photonics, Oct. 2024, v. 9, no. 10, 101305, p. 101305-1 - 101305-10
Abstract: Feedback-insensitive Quantum Dot (QD) comb lasers hold significant promise for integrated dense wavelength division multiplexing photonic systems due to their ability to generate multiple wavelengths and operate without bulky isolators, facilitating the development of high-density and large-scale photonic integrated circuits. In this study, we investigated the optical feedback (OFB) influence of the InAs/GaAs QD comb laser from various perspectives. Our findings reveal that the comb laser exhibits a stable locking region with consistent optical spectra across a range of OFB strengths (−45 to −10 dB). Furthermore, under a high OFB strength of −10 dB, there is a notable 40 dB suppression of relative intensity noise in the low-frequency range (below 1 GHz). Transmission experiments demonstrate clear eye openings at 25 Gbps using a bit pattern of 231-1 pseudorandom binary sequence. Remarkably, the bit error rates decrease by five orders of magnitude under −10 dB OFB. These results indicate the ultra-robustness of 100 GHz grid QD comb laser, which exhibits great transmission enhancement under a strong OFB of −10 dB.
Publisher: AIP Publishing LLC
Journal: APL photonics 
EISSN: 2378-0967
DOI: 10.1063/5.0222404
Rights: © 2024 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
The following publication Cui, X., Chen, J., Huang, J., Yang, B., Qin, J., Wang, W., Duan, J., Wang, T., Wang, Z., & Zhang, J. (2024). Isolator-free quantum dot comb lasers with optical feedback enhanced DWDM transmission. APL Photonics, 9(10), 101305 is available at https://doi.org/10.1063/5.0222404.
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