TY - GEN
T1 - Nonlinear semiconductor laser dynamics for wideband microwave time-frequency analysis
AU - Chen, Yang
AU - Zhang, Sunan
N1 - Publisher Copyright:
© 2024 SPIE.
PY - 2024
Y1 - 2024
N2 - This paper introduces two time-frequency analysis schemes based on nonlinear semiconductor laser dynamics reported recently by us. The key to the two schemes is the nonlinear period-one (P1) semiconductor laser dynamics. By injecting an optical signal with linearly varying intensity over time into a semiconductor laser, a wideband frequency-sweep optical signal is generated via the P1 oscillation. Subsequently, the wideband frequency-sweep optical signal is modulated by the signal under test (SUT), generating multiple frequency-sweep optical sidebands that are directly associated with the SUT frequency. Then, an optical narrowband filter is used to process these optical sidebands to implement the frequency-to-time mapping and the final time-frequency analysis. The narrow transmission peak in the notch of a phase-shifter fiber Bragg grating and the stimulated Brillouin scattering (SBS) gain spectrum are used as the optical narrowband filter, respectively. The former features a simple system structure and easy implementation but its bandwidth is hard to adjust. The latter, because its bandwidth is easy to manipulate, can meet the needs of performance optimization under different sweep chirp rates. To solve the problem of limited measurement resolution caused by the instability of P1 oscillation, an optoelectronic feedback loop is employed to stabilize the P1 oscillation to improve the stability and performance of the system. Furthermore, the nonlinearity of the generated frequency-sweep optical signal is compensated through pre-compensation or post-compensation. Using the proposed system, the time-frequency information of SUTs in a 4-GHz bandwidth is acquired.
AB - This paper introduces two time-frequency analysis schemes based on nonlinear semiconductor laser dynamics reported recently by us. The key to the two schemes is the nonlinear period-one (P1) semiconductor laser dynamics. By injecting an optical signal with linearly varying intensity over time into a semiconductor laser, a wideband frequency-sweep optical signal is generated via the P1 oscillation. Subsequently, the wideband frequency-sweep optical signal is modulated by the signal under test (SUT), generating multiple frequency-sweep optical sidebands that are directly associated with the SUT frequency. Then, an optical narrowband filter is used to process these optical sidebands to implement the frequency-to-time mapping and the final time-frequency analysis. The narrow transmission peak in the notch of a phase-shifter fiber Bragg grating and the stimulated Brillouin scattering (SBS) gain spectrum are used as the optical narrowband filter, respectively. The former features a simple system structure and easy implementation but its bandwidth is hard to adjust. The latter, because its bandwidth is easy to manipulate, can meet the needs of performance optimization under different sweep chirp rates. To solve the problem of limited measurement resolution caused by the instability of P1 oscillation, an optoelectronic feedback loop is employed to stabilize the P1 oscillation to improve the stability and performance of the system. Furthermore, the nonlinearity of the generated frequency-sweep optical signal is compensated through pre-compensation or post-compensation. Using the proposed system, the time-frequency information of SUTs in a 4-GHz bandwidth is acquired.
KW - frequency-to-time mapping
KW - microwave frequency measurement
KW - nonlinear laser dynamics
KW - optoelectronic feedback
KW - period-one oscillation
KW - phase-shifted fiber Bragg grating
KW - stimulated Brillouin scattering
KW - time-frequency analysis
UR - https://www.scopus.com/pages/publications/85212233251
U2 - 10.1117/12.3032751
DO - 10.1117/12.3032751
M3 - 会议稿件
AN - SCOPUS:85212233251
T3 - Proceedings of SPIE - The International Society for Optical Engineering
BT - Semiconductor Lasers and Applications XIV
A2 - Li, Wei
A2 - Zhu, Sha
A2 - Hofmann, Werner H.
A2 - Wang, Ting
PB - SPIE
T2 - Semiconductor Lasers and Applications XIV 2024
Y2 - 12 October 2024 through 14 October 2024
ER -