## Abstract In this paper, we analyze the characteristic performance of a multiple‐phase‐shift (MPS) distributed feedback (DFB) laser diode based on the transmission line laser model (TLLM) for the first time. The effects of the phase shift position and the value and number of phase shifts on the l
Efficient material-gain models for the transmission-line laser model
✍ Scribed by Linh V. T. Nguyen; Arthur J. Lowery; Phil C. R. Gurney; Dalma Novak; Casper N. Murtonen
- Publisher
- John Wiley and Sons
- Year
- 1995
- Tongue
- English
- Weight
- 977 KB
- Volume
- 8
- Category
- Article
- ISSN
- 0894-3370
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✦ Synopsis
Transmission-line laser models (TLLMs) are time-domain models suitable for the simulation of complex phenomena in semiconductor lasers. TLLMs include time-domain filters based on transmission-line stubs to model the spectral dependence of the material gain. In this paper, numerical simulations are presented which show that the accuracy of these gain models is dependent on the model's iteration timestep. Analytical formulae are derived that relate the accuracy of the filters to the timestep, filter centre frequency, and filter bandwidth. A new wideband stub filter which allows the material gain to be modelled using a larger timestep is presented. This is equivalent to a digital infinite-impulse-response filter, which is more computationally efficient than finite-impulse-response filters, and is unconditionally stable. The new gain model can improve the computational speed for simulating for multimode Fabry-Perot lasers by a factor of 10-100.
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