Skip to content

Autonomous and Cyber-Physical Systems (ACPS) Research Group

Co-creation of knowledge

  • About us
  • People
  • News
  • Research
    • Sensors
    • Sensors Applications
    • Computer Vision
    • Wireless Communication and Networks
    • Robotics for Automotive and Industrial Applications
    • Robotics for Biomedical Applications
    • Control and Optimization
    • Human Machine Interaction / Human Computer Interaction
    • IoT and Embedded Systems
    • UAVs and Autonomous Systems
    • UGVs and Autonomous Systems
    • UUSs and Autonomous Systems
    • Security and Privacy
    • Formal Analysis and Verification
    • Data Analytics and Computing
    • Smart Electronic Systems
    • Multi-Agent Systems
    • Medical Imaging
  • Publications
  • Projects
  • Teaching
  • Students
  • Collaborations
  • Vacant Positions
  • Contact
  • Workshops

Tag: Plasma temperature

Posted on March 22, 2021April 16, 2023

The paper titled, “CURRENT MODULATION INDUCED STABILITY IN LASER DIODE UNDER HIGH OPTICAL FEEDBACK STRENGTH” has been accepted for publication in IEEE Access 2021.

A. Jha, M. K. Shah, S. Jha, L. R. Cenkeramaddi and S. Royo, “CURRENT MODULATION INDUCED STABILITY IN LASER DIODE UNDER HIGH OPTICAL FEEDBACK STRENGTH,” in IEEE Access, doi: 10.1109/ACCESS.2021.3069387.

Keywords: Frequency modulation, Laser feedback, Modulation, Laser stability, Laser modes, Optical feedback, Plasma temperature

Abstract: The back-reflection of emitted laser beam (optical feedback, also know as selfmixing) from various external interfaces are sufficient to cause instability, and prohibiting its use in various fields such as communication, spectroscopy, imaging to name a few. So it is desirable to study the laser dynamics and the conditions causing it to be stable in spite of strong optical feedback. With the aid of mathematical formulation, simulation and backed by experimental evidences, it is demonstrated that the frequency deviation of the laser emission due to current (intensity) modulation alters the dynamic state and boundary conditions of the system such that even under large optical feedback strength, the laser may attain stability and retain single modal state. The frequency deviation resulting from former is shown to modify the phase of the system in opposite direction to that induced by the later, showing that there exists an optimal modulation current which compensates the effect of optical feedback and may be used to retain the laser in single modal stationary state. The method thus provides a methodology to avoid optical feedback-induced instability in semiconductor lasers by using the proper amplitude of current (intensity) modulation.

More details:DOI: 10.1109/ACCESS.2021.3069387

IN-SSCOM

INCAPS - 2nd Indo-Norway Workshop on Smart Sensing, Communication and Machine Learning for Autonomous and Cyber Physical Systems (IN-SSCOM) 14-16 October 2022.

About The University of Agder

UiA seeks to be an open and inclusive university that is characterised by a culture of collaboration.
Knowledge is successfully co-created when staff, students and the larger community challenge each other.

Visit us:

Campus Kristiansand
Universitetsveien 25
4630 Kristiansand

Campus Grimstad
Jon Lilletuns vei 9
4879 Grimstad

More about UiA

  • Facebook
  • Linkedin
  • Email
© UiA 2025