Modeling of optical signal processing based on injection-locked broadband quantum cascade lasers

2020 ◽  
Vol 95 (5) ◽  
pp. 055502
Author(s):  
Maryam Esmaeili ◽  
Mohammad Mohsen Sheikhey ◽  
Hamed Baghban ◽  
Saeed Golmohammadi
2021 ◽  
Vol 11 (24) ◽  
pp. 11730
Author(s):  
Binbin Zhao ◽  
Yibo Peng ◽  
Xingguang Wang ◽  
Cheng Wang

Quantum cascade lasers subject to tilted optical feedback produce periodic oscillations, quasi-periodic oscillations, and low-frequency oscillations. This work presents the modulation characteristics of period-one (P1) oscillations in a quantum cascade laser with tilted optical feedback. The electrical signal at the oscillation frequency is more than 50 dB higher than the noise level, and the electrical linewidth is less than 2.0 kHz. This electrical linewidth is about four orders of magnitude narrower than the optical linewidth (around 16 MHz) of the free-running laser, which suggests that the optical sidebands induced by the P1 oscillations are highly coherent with the main optical mode. In addition, the modulation depth of the optical signal is found to be in the range of 1% to 3.5%. In addition, it is verified in the simulations that the P1 oscillations induce not only amplitude modulation but also frequency modulation due to the phase-amplitude coupling effect.


2014 ◽  
Vol 1 ◽  
pp. 462-465
Author(s):  
Sheng-Kwang Hwang ◽  
Sze-Chun Chan ◽  
Yu-Han Hung ◽  
Shiuan-Li Lin ◽  
Cheng-Hao Chu

2009 ◽  
Vol 129 (11) ◽  
pp. 799-801
Author(s):  
Daoshe Cao ◽  
Taiki Yamano ◽  
Yoku Inoue ◽  
Akihiro Ishida

PIERS Online ◽  
2008 ◽  
Vol 4 (2) ◽  
pp. 267-270 ◽  
Author(s):  
Saeed Fathololoumi ◽  
Dayan Ban ◽  
Hui Luo ◽  
Peter Grant ◽  
Sylvain R. Laframboise ◽  
...  

2008 ◽  
Author(s):  
M. M. Fejer ◽  
R. K. Route ◽  
M. Charbonneau-Lefort ◽  
J. Huang ◽  
D. Hum ◽  
...  

Author(s):  
Sandip Tiwari

This chapter explores electromagnetic-matter interactions from photon to extinction length scales, i.e., nanometer of X-ray and above. Starting with Casimir-Polder effect to understand interactions of metals and dielectrics at near-atomic distance scale, it stretches to larger wavelengths to explore optomechanics and its ability for energy exchange and signal transduction between PHz and GHz. This range is explored with near-quantum sensitivity limits. The chapter also develops the understanding phononic bandgaps, and for photons, it explores the use of energetic coupling for useful devices such as optical tweezers, confocal microscopes and atomic clocks. It also explores miniature accelerators as a frontier area in accelerator physics. Plasmonics—the electromagnetic interaction with electron charge cloud—is explored for propagating and confined conditions together with the approaches’ possible uses. Optoelectronic energy conversion is analyzed in organic and inorganic systems, with their underlying interaction physics through solar cells and its thermodynamic limit, and quantum cascade lasers.


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