Title :
A New Optical Gain Model for Quantum Wells Based on Quantum Well Transmission Line Modeling Method
Author :
Mingjun Xia ; Ghafouri-Shiraz, Hooshang
Author_Institution :
Sch. of Electron., Electr. & Syst. Eng., Univ. of Birmingham, Birmingham, UK
Abstract :
This paper presents a new method for modeling the gain spectrum in quantum well (QW) structures based on the QW transmission line modeling (QW-TLM) method. In the QW-TLM method, three parallel RLC filters together with their associated weight coefficients constitute a QW-TLM unit, which represents the processes that electrons transit from the conduction band to the heavy hole band, the light hole band, and the spin-orbit split-off band at a specific wave vector. Parallel QW-TLM units are adopted to describe the electron transitions in the wave vector space. Furthermore, the optical gain model of QWs based on the QW-TLM method is presented. The gain spectrum obtained through the QW-TLM method is agreeable with the gain spectrum calculated from the analytical expression in a large wavelength range from 1300 to 1700 nm. In order to reduce the computation time, under sampling QW-TLM is proposed to model the gain curve of QWs. The simulation result shows that the gain curve obtained from under sampling QW-TLM is consistent with the gain curve obtained through the theoretical derivation from 1510 to 1575 nm, which satisfies the requirement of studying the dynamic spectral characteristics of QW devices.
Keywords :
RLC circuits; conduction bands; optical elements; quantum well devices; semiconductor device models; spin-orbit interactions; transmission line theory; QW-TLM; conduction band; gain curve; gain spectrum; heavy hole band; light hole band; optical gain model; parallel RLC filters; quantum well transmission line modeling method; spin-orbit split-off band; weight coefficients; Mathematical model; Optical filters; Power transmission lines; Semiconductor device modeling; Time-domain analysis; Time-varying systems; Vectors; Quantum well; gain model; semiconductor optical devices; transmission line modelling; under sampling;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2015.2396572