Karima Annou | Plasma Physics | Best Researcher Award

Dr. Karima Annou | Plasma Physics | Best Researcher Award

Researcher at Centre de dรฉveloppement des technologies avancรฉes, Algeria

Dr. Karima Annou ๐Ÿ‡ฉ๐Ÿ‡ฟ is an Algerian researcher ๐Ÿง‘โ€๐Ÿ”ฌ specializing in theoretical physics, particularly in plasma science โšก. She earned her Ph.D. ๐ŸŽ“ from USTHB in 2013, focusing on multidimensional coherent structures in dusty plasmas. Currently, she works at the Centre de Dรฉveloppement des Technologies Avancรฉes (CDTA) in Algiers ๐Ÿข. A dedicated peer reviewer and an international scientific member ๐ŸŒ, Dr. Annou has made notable contributions to nonlinear dynamics and plasma applications. Fluent in Arabic, French, and English ๐Ÿ—ฃ๏ธ, she blends strong computing skills ๐Ÿ’ป with a passion for advancing plasma research and its applications.

Professional Profile:

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Education and Experience ๐ŸŽ“๐Ÿ› ๏ธ

Education:

  • ๐ŸŽ“ Habilitation, UMBB, Algeria (2016)

  • ๐ŸŽ“ Ph.D. in Physics, USTHB, Algeria (2013) – Theoretical physics (Dusty plasmas)

  • ๐ŸŽ“ Magister en Physique (MSc equivalent), USTHB (2007)

  • ๐ŸŽ“ DES de Physique (Radiation Physics), USTHB (2003)

Experience:

  • ๐Ÿงช 2012โ€“Present: Researcher, Plasma & Application Team, CDTA, Algeria

  • ๐Ÿง‘โ€๐Ÿซ 2008โ€“2010: Physics/Chemistry Teacher, AGORA High School, Algiers

  • ๐Ÿง‘โ€๐Ÿซ 2007โ€“2008: Lecturer, University of Boumerdes (UMBB)

  • ๐Ÿง‘โ€๐Ÿซ 2006โ€“2007: Physics/Chemistry Teacher, FENNEC School, Algiers

  • ๐Ÿง‘โ€๐Ÿซ 2005โ€“2006: Physics Teacher, Med Ben Rahal High School, Algiers

  • ๐Ÿ“ข 2000โ€“2006: Head of Communication, Club of Young Physicists

Professional Development ๐Ÿง‘โ€๐Ÿ’ป๐Ÿ“ˆ๐Ÿ—ฃ๏ธ

Dr. Karima Annou ๐Ÿ“š constantly enhances her academic and professional skills. She is fluent in Arabic, French, and English ๐Ÿ—ฃ๏ธ, enabling her to collaborate on international levels ๐ŸŒ. Her technical proficiencies include using symbolic and numerical software like Maple, Matlab, and Geant4 ๐Ÿ’ป, alongside a strong command of MS Office tools. With teaching experience across different educational levels ๐Ÿง‘โ€๐Ÿซ, she also refined her scientific communication skills while leading youth physics initiatives ๐Ÿ“ข. Dr. Annou remains active in global research networks, peer-reviewing for top journals and participating in associations like AIP and CMSIM ๐Ÿ”ฌ.

Research Focus Category ๐Ÿ”ฌ๐ŸŒŒโšก

Dr. Karima Annouโ€™s research ๐Ÿ”ฌ revolves around Nonlinear Dynamics, Solitary Waves, and instability phenomena in plasma physics โšก. She focuses on nonlinear partial differential equations (PDEs), dusty plasma models ๐ŸŒŒ, laser-plasma interactions, and materials science applications ๐Ÿงช. Her theoretical work extends to kinetic theories, anomalous diffusion, and astrophysical turbulence ๐ŸŒ . Dr. Annou’s studies contribute to understanding complex plasma behaviors under extreme conditions, aiming at practical applications such as energy, materials engineering, and space plasma exploration ๐Ÿš€. Her interdisciplinary approach bridges fluid dynamics and advanced material sciences ๐Ÿ”—.

Awards and Honors ๐Ÿ†๐ŸŽ–๏ธ

  • ๐Ÿ… International Member, CMSIM (Chaotic Modeling and Simulation)

  • ๐ŸŽ–๏ธ Peer Reviewer for prestigious journals:

    • Physics of Plasmas (AIP Publishing) ๐Ÿ“„

    • AIP Advances ๐Ÿ“š

    • Journal of Physics A: Mathematical and Theoretical (IOPscience) ๐Ÿ“˜

    • Journal of Applied Physics (AIP Publishing) ๐Ÿงช

    • American Journal of Modern Physics (Science Publishing) ๐Ÿงฌ

    • Transactions on Plasma Science (IEEE) ๐Ÿ–ฅ๏ธ

Publication Top Notes

1. Dromion in space and laboratory dusty plasma

  • Authors: K. Annou, R. Annou

  • Journal: Physics of Plasmas, Volume 19, Article 043705 (2012)

  • Citations: 22

  • Summary:
    This paper studies dromions, which are localized two-dimensional (2D) structures, in dusty plasmasโ€”both in space environments and laboratory settings. The authors derive conditions under which dromions can form using a two-dimensional generalization of plasma wave equations. They explore how dust grain parameters and plasma characteristics affect the generation and stability of these structures, offering insights for space plasmas (like in cometary tails) and controlled experiments.

2. Cairns-Gurevich equation for soliton in plasma expansion into vacuum

  • Authors: K. Annou, D. Bara, D. Bennaceur-Doumaz

  • Journal: Journal of Plasma Physics, Volume 81, Issue 3, Article 905810318 (2015)

  • Citations: 20

  • Summary:
    This paper derives a modified nonlinear evolution equationโ€”specifically the Cairns-Gurevich equationโ€”to describe the formation and propagation of solitons during plasma expansion into a vacuum. The model accounts for the nonlinearity and dispersion specific to expanding plasmas, which is important for laser-plasma interactions, astrophysical jets, and spacecraft wake studies. The study provides analytical soliton solutions and discusses physical conditions necessary for their existence.

3. Spherical Kadomtsevโ€“Petviashvili equation for dust acoustic waves with dust size distribution and two-charges-ions

  • Authors: K. Annou, S. Bahamida, R. Annou

  • Journal: Pramana โ€“ Journal of Physics, Volume 76, Issue 3, Pages 513โ€“518 (2011)

  • Citations: 16

  • Summary:
    In this article, the authors extend the classical Kadomtsevโ€“Petviashvili (KP) equation into spherical geometry to describe dust acoustic waves (DAWs) in dusty plasmas. They include realistic effects like dust size distribution and two types of ion species with different charges. The spherical KP equation derived here helps explain nonlinear wave structures observed in astrophysical dusty environments, such as planetary rings and cometary comas.

4. Ion-acoustic solitons in plasma: an application to Saturnโ€™s magnetosphere

  • Author: K. Annou

  • Journal: Astrophysics and Space Science, Volume 357, Article 1-9 (2015)

  • Citations: 14

  • Summary:
    This study applies ion-acoustic soliton theory to the conditions of Saturnโ€™s magnetosphere. The author models the formation of ion-acoustic solitary waves under the influence of varying plasma parameters found around Saturn, including temperature ratios and density profiles. The results are relevant for interpreting data from missions like Cassini, offering insights into how nonlinear structures affect plasma transport and particle dynamics around giant planets.

5. Effect of nonthermal ion distribution and dust temperature on nonlinear dust-acoustic solitary waves

  • Authors: K. Annou, R. Annou

  • Journal: Pramana โ€“ Journal of Physics, Volume 78, Issue 1, Pages 121โ€“126 (2012)

  • Citations: 11

  • Summary:
    This paper analyzes how a nonthermal ion distribution (departing from Maxwellian) and finite dust temperature influence the properties of dust-acoustic solitary waves. The study shows that these factors significantly modify the amplitude and width of solitary waves, affecting their stability and propagation. These findings are important for understanding nonlinear wave behavior in both laboratory dusty plasmas and cosmic settings like interstellar clouds.

Conclusion

โžก๏ธ Dr. Karima Annou is highly suitable for a Best Researcher Award. She meets all the major criteria: advanced degrees, sustained research output, international peer recognition, interdisciplinary research, and active service to the scientific community. Her work in plasma physics and nonlinear dynamics is scientifically impactful, and she represents an excellent example of dedication to research and scientific excellence, especially from an emerging research region (Algeria).

Richard Morrow | Plasma Physics | Outstanding Scientist Award

Dr. Richard Morrow | Plasma Physics | Outstanding Scientist Award

Research Affiliate at Physics Department, Sydney University, Australia

Dr. R. Morrow is an Australian physicist specializing in plasma physics and electrical engineering. With a Ph.D. in Plasma Physics from Flinders University (1971) and a B.Sc. (Hons) in Physics from Adelaide University (1966), he has contributed extensively to gaseous electronics and industrial physics. He held prestigious positions, including Senior Principal Research Scientist at CSIRO and Senior Research Fellow at Sydney University. Dr. Morrow also founded the Gaseous Electronics Meeting in Sydney and represented Australia in international workshops. His groundbreaking research on electric arcs and ionized gases has earned him multiple accolades, including the WTIA Ramsay Moon Award. ๐Ÿ†โšก

Professional Profile

Scopus

Education & Experience ๐ŸŽ“๐Ÿ“š

โœ… B.Sc. (Hons) in Physics โ€“ Adelaide University, 1966
โœ… Ph.D. in Plasma Physics โ€“ Flinders University, 1971
โœ… B.A. in Anthropology โ€“ University of Sydney, 1981

๐Ÿงช Career Highlights:
๐Ÿ”น Senior Research Fellow โ€“ Sydney University (2004-2007)
๐Ÿ”น Principal Consultant โ€“ Morrow Corona Solutions (1999-2004)
๐Ÿ”น Senior Principal Research Scientist โ€“ CSIRO (1974-1999)
๐Ÿ”น Research Officer โ€“ The Electricity Council Research Centre, UK (1972-1974)
๐Ÿ”น Postdoctoral Fellow โ€“ Liverpool University, UK (1970-1972)

Professional Development ๐ŸŒ๐Ÿ”

Dr. Morrow has played a key role in advancing plasma physics and gaseous electronics worldwide. He co-founded the Gaseous Electronics Meeting in 1980, fostering global collaboration in the field. His contributions to international scientific committees have been instrumental in shaping conferences like the International Conference on Phenomena in Ionized Gases and the International Gas Discharges Conference. He has represented Australia in Australia/Japan Workshops on Gaseous Electronics and served as a supervisor and examiner for Ph.D. students. His extensive peer-review work for ARC Large Grants further solidifies his influence in the research community. ๐ŸŒโšก

Research Focus โšก๐Ÿ”ฌ

Dr. Morrow’s research revolves around plasma physics, gaseous electronics, and electrical discharges. His work has significantly contributed to understanding ionized gases, electric arcs, and gas discharges, which are crucial in industrial and telecommunications applications. His expertise in applied plasma physics has led to advancements in electrical insulation, corona discharges, and arc phenomena. By collaborating with leading institutions worldwide, he has enhanced plasma applications in energy systems, telecommunications, and material processing. His legacy continues to inspire researchers in the field of high-energy physics and industrial plasma applications. ๐Ÿ”ฅ๐Ÿ”‹

Awards & Honors ๐Ÿ…๐ŸŽ–๏ธ

๐Ÿ† Academy of Science/Japan Society Fellowship โ€“ Research visits to Tokushima, Kyoto, Morioka & Sapporo (1991)
๐Ÿ† WTIA Ramsay Moon Award Medal โ€“ For exceptional electric arc research (1993)
๐Ÿ† Visiting Fellow, St. John’s College, Cambridge University โ€“ Annually from 1997 to 2001
๐Ÿ† International Scientific Committee Member โ€“ Various ionized gas & plasma conferences
๐Ÿ† Australian Representative โ€“ Australia/Japan Workshops on Gaseous Electronics (1988, 1990, 1994)

Publication Top Notes

  • “A New Comprehensive Theory for Ball and Bead Lightning”:

    • Author: Richard Morrow
    • Journal: The Physicist
    • Year: 2020
    • Citation: Morrow, R. (2020). A New Comprehensive Theory for Ball and Bead Lightning. The Physicist, 57, 14โ€“20.
  • “The Origin of Ball and Bead Lightning from an Expanded Lightning Channel”:

    • Author: Richard Morrow
    • Journal: Journal of Atmospheric and Solar-Terrestrial Physics
    • Year: 2019
    • Citation: Morrow, R. (2019). The Origin of Ball and Bead Lightning from an Expanded Lightning Channel. Journal of Atmospheric and Solar-Terrestrial Physics, 195, 105116.
  • “A New Theory for the Expansion of Lightning Channels from a Diameter of Centimetres to Metres via Ionizing Waves”:

    • Author: Richard Morrow
    • Journal: Journal of Atmospheric and Solar-Terrestrial Physics
    • Year: 2019
    • Citation: Morrow, R. (2019). A New Theory for the Expansion of Lightning Channels from a Diameter of Centimetres to Metres via Ionizing Waves. Journal of Atmospheric and Solar-Terrestrial Physics, 189, 18โ€“26.
  • “A General Theory for Ball Lightning Structure and Light Output”:

    • Author: Richard Morrow
    • Journal: Journal of Physics D: Applied Physics
    • Year: 2018
    • Citation: Morrow, R. (2018). A General Theory for Ball Lightning Structure and Light Output. Journal of Physics D: Applied Physics, 51(14), 145202.
  • “Ball Lightning Dynamics and Stability at Moderate Ion Densities”:

    • Author: Richard Morrow
    • Journal: Journal of Physics D: Applied Physics
    • Year: 2017
    • Citation: Morrow, R. (2017). Ball Lightning Dynamics and Stability at Moderate Ion Densities. Journal of Physics D: Applied Physics, 50(37), 375202.