This paper presents the results of a physics-based time-domain simulator for a vertical-cavity surface-emitting laser (VCSEL). We implemented a trapezoidal rule second order backward differentiation formula (TR-BDF2) to simulate the large signal response of the device under investigation, including the parasitic effects of the pin junction arising from an interplay of optical and carrier transport phenomena.
Physics-Based Time-Domain Modeling of VCSELs / D'Alessandro, Martino; Gullino, Alberto; Tibaldi, Alberto; Bertazzi, Francesco; Goano, Michele; Debernardi, Pierluigi. - ELETTRONICO. - 2022 International Conference on Numerical Simulation of Optoelectronic Devices (NUSOD):(2022), pp. 61-62. (Intervento presentato al convegno 2022 International Conference on Numerical Simulation of Optoelectronic Devices (NUSOD) tenutosi a Torino, Italia nel 12-16 settembre 2022) [10.1109/NUSOD54938.2022.9894787].
Physics-Based Time-Domain Modeling of VCSELs
D'Alessandro, Martino;Gullino, Alberto;Tibaldi, Alberto;Bertazzi, Francesco;Goano, Michele;
2022
Abstract
This paper presents the results of a physics-based time-domain simulator for a vertical-cavity surface-emitting laser (VCSEL). We implemented a trapezoidal rule second order backward differentiation formula (TR-BDF2) to simulate the large signal response of the device under investigation, including the parasitic effects of the pin junction arising from an interplay of optical and carrier transport phenomena.| File | Dimensione | Formato | |
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https://hdl.handle.net/11583/2971774
			
		
	
	
	
			      	