研究目的
Investigating the behavior of a nanolaser in the lasing transition region under the influence of intensity feedback.
研究成果
The study reveals that feedback enhances coherence in nanolasers, as indicated by the reduction in the peak height of the zero-delay autocorrelation and earlier convergence towards the Poisson limit. The results validate the use of second-order autocorrelations as a sufficient tool for interpreting the dynamics of nanolasers under feedback.
研究不足
The model is based on a photon number description and cannot account for phase coherence. The predictions may break down once proper, noise-free lasing oscillation is in place.
1:Experimental Design and Method Selection:
A fully stochastic numerical scheme is used to simulate the behavior of a nanolaser under intensity feedback. The study focuses on input-output curves and second-order correlations for different feedback fractions.
2:Sample Selection and Data Sources:
The simulation is based on a nanolaser model with parameters mimicking small nanopillar devices.
3:List of Experimental Equipment and Materials:
The simulation does not involve physical equipment but models the behavior based on theoretical parameters.
4:Experimental Procedures and Operational Workflow:
The simulation involves stochastic processes for pumping, spontaneous emission, stimulated emission, and transmission through cavity mirrors, with added feedback as another stochastic process.
5:Data Analysis Methods:
The analysis includes studying input-output curves, second-order correlations, temporal traces of emitted photons, and radio-frequency power spectra.
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