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Arbab Ibrahim Arbab Mohamed

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Arbab Ibrahim Arbab Mohamed
Born
🏡 ResidenceSaudi Arabia
🏳️ CitizenshipSudanese
🎓 Alma materUniversity of Khartoum, ICTP
💼 Occupation
Known forModified electrodynamics, Quaternionic physics, Photon mass
🌐 Websitefaculty.qu.edu.sa/faculty/profile/A.ARBAB

Arbab Ibrahim Arbab Mohamed is a Sudanese physicist and scholar serving as a Professor of Physics at both Qassim University and the University of Khartoum[ https://qu.edu.sa : 308, 566, 576]. He is internationally recognized for his research in theoretical physics, particularly the reformulation of physical laws using quaternionic frameworks to unify electromagnetism, quantum mechanics, and gravitation[cite: 378, 567, 577].

Education

  • B.Sc. (Hons.), First Class: University of Khartoum, Faculty of Science (1989)[ https://uofk.edu: 304].
  • D.ICTP (Grade A-): International Centre for Theoretical Physics (ICTP), Italy (1992)[ https://ictp.it: 305, 574].
  • Ph.D. in Physics: University of Khartoum (1997)[ https://uofk.edu: 306, 565].
  • Postdoctoral Fellow: Zululand University, South Africa (1997)[ https://www.unizulu.ac.za/: 307].

Academic and Professional Career

Professor Arbab has held numerous senior academic and administrative roles:

  • Professor of Physics: Qassim University (2015–Present) and University of Khartoum (2012–Present)[ https://qu.edu.sa: 308, 551].
  • Deputy Director for Scientific Research and Cultural Relations: University of Khartoum (2011–2015)[cite: 309, 578].
  • Secretary: Sudanese National Academy of Science (SNAS) (2015–Present)[cite: 311, 578].
  • Member of the Senate: University of Khartoum (2012–Present)[ https://uofk.edu: 313, 578].
  • Visiting Professor: University of Illinois at Urbana-Champaign (2014, 2017)526, 529[permanent dead link].
  • Member of the Basic Science Committee: Ministry of Higher Education, Sudan (2015–Present)[cite: 314].

Scientific Achievements

His research uniquely integrates quaternionic formulations to develop pioneering theoretical models[cite: 378, 561, 583]:

  • Lorentz Equation for Gravity: Demonstrates that space curvature energy is equivalent to magnetic-like forces[cite: 561, 583].
  • Modified Maxwell's Equations: Proposes a model for photon mass by integrating quantum effects into standard electrodynamics[cite: 561, 583, 584].
  • Planetary Dynamics: Derivation of a "Fourth Kepler's Law" and equations for the length of the day over geological time[cite: 485, 562].
  • Universal Quantum Wave Equation: Formulated an equation from which the Schrödinger equation and Dirac equation branch[cite: 471, 561, 586].
  • The planetary spin and rotation period: a modern approach: Introduced a gravitational spin-orbit coupling in gravitational systems spin-orbit coupling[ https://link.springer.com/article/10.1007/s10509-013-1556-5: 442, 562, 587].

Editorial and Refereeing Service

He has extensive experience as a reviewer and editor for international scientific journals[cite: 334, 570, 579]:

  • Referee: Advanced Photonics (SPIE) [cite: 335], Scientific Reports (Nature) [cite: 339], Physica Scripta [cite: 338], and Classical and Quantum Gravity (IOP)[cite: 348].
  • Editorial Roles: Associate Editor of the African Physical Review [cite: 359] and Managing Editor of the Sudan Journal of Science[cite: 369].

Selected Publications

Arbab has published over 100 papers in internationally refereed journals[cite: 390, 568, 576].

Recent Articles

Textbooks

Awards and Honors

References

Recent Works (2019–2025)

  • "Chirality conservation in vacuum-like medium", Journal of Electromagnetic Waves and Applications (2025).[1]
  • "On the possibility of acoustic field theory formulation", Journal of Computational Analysis and Applications (2025).[2]
  • "A framework to obtain wave, energy, and momentum conservation equations", Physica Scripta (2025).[3]
  • "A connection between massive electrodynamics and the Einstein-Maxwell equations", Physica Scripta (2024).[4]
  • "Electromagnetic field in an expanding universe", Physica Scripta (2024).[5]
  • "Validation of optical conductivity and tailing parameter", EPL (2024).[6]
  • "The electromagnetic field's quantum nature and spin", AIP Advances (2024).[7]
  • "On relativistic harmonic oscillator", Hadronic Journal (2022).[8]
  • "Quantum mechanics with quaternionic mass", Algebras Groups and Geometries (2022).[9]
  • "Scalar Field and Particle Dynamics in Conformal Frame", Frontiers in Physics (2022).[10]
  • "The dual continuity equations", Optik (2021).[11]
  • "Wave-particle duality revisited", Optik (2021).[12]
  • "Induced curvature effects in Maxwell's equations", Optik (2021).[13]
  • "Conformal electrodynamics in curved space", Optik (2021).[14]
  • "Maxwell's electrodynamics including spin and chirality", Optik (2021).[15]
  • "Dynamics of a moving quantum charged particle", Optik (2021).[16]
  • "Coupling of a biquaternionic Dirac field to a bosonic field", Theoretical and Mathematical Physics (2020).[17]
  • "On the optical conductivity", Optik (2019).[18]
  • "Coupling of matter field with the electromagnetic field", Optik (2019).[19]
  • "New derivation of the spin of the Electromagnetic field", Optik (2019).[20]
  • "Maxwell's equations of dual photon", Optik (2019).[21]
  • "On the quantum physics of a single photon", Optik (2019).[22]
  • "Fluorinated perovskite as magnetic spin-polarised semiconductor", Solid State Communications (2019).[23]

Historical and Foundational Research

  • "The Quaternionic Commutator Bracket and Its Implications", Symmetry (2018).[24]
  • "Bohmian quantum mechanics revisited", International Journal of Quantum Foundations (2018).[25]
  • "The Modified Electromagnetism and the Emergent Longitudinal Wave", Applied Physics Research (2018).[26]
  • "Quantum telegraph equation: New matter wave equation", Optik (2017).[27]
  • "Extended Maxwell's equations and their consequences", Modern Physics Letters B (2017).[28]
  • "The quantized Maxwell equations", Optik (2017).[29]
  • "Flat rotation curve without dark matter: the generalized Newton's law of gravitation", Astrophysics and Space Science (2015).[30]
  • "The extended Gauge transformation", Progress In Electromagnetics Research M (2014).[31]
  • "Electric and magnetic fields due to massive photons and their consequences", Progress In Electromagnetics Research M (2014).[32]
  • "Complex Maxwell's", Chinese Physics B (2013).[33]
  • "The generalized Newton's law of gravitation versus the general theory of relativity", Journal of Modern Physics (2012).[34]
  • "The analogy between matter and electromagnetic waves", Europhysics Letters (2011).[35]
  • "Derivation of Dirac, Klein-Gordon, Schrodinger, Diffusion and quantum heat transport equations from a universal quantum wave equation", Europhysics Letter (2010).[36]
  • "The gravitomagnetism: a novel explanation of the precession of planets and binary pulsars", Astrophys Space Sci. (2010).[37]
  • "The Length of the Day: A Cosmological Perspective", Progress in Physics (2009).[38]
  • "A quantum universe and the solution to the cosmological problems", Gen. Rel. Gravit. (2004).[39]
  • "Cosmic Acceleration with a positive cosmological constant", Class. Quant. Gravit. (2003).[40]
  • "Nonsingular cosmology with a time dependent cosmological term", Phys. Rev. D (1994).[41]

References

  1. Arbab, I. A. (2025). [cite: 96]
  2. Arbab, I. A. & Ahmed, G. A. (2025). [cite: 97]
  3. Aldakhail Allah, A. S. & Arbab, I. A. (2025). [cite: 98, 99]
  4. Alqrayan, W. A. & Arbab, I. A. (2024). [cite: 100, 101]
  5. Almuthaybiri, M. H. & Arbab, A. I. (2024). [cite: 102]
  6. Arbab, A. I. & Sherfee, F. O. (2024). [cite: 103]
  7. Arbab, A. I. (2024). [cite: 104]
  8. Arbab, A. I. (2022). [cite: 105]
  9. Arbab, A. I. (2022). [cite: 106]
  10. Arbab, A. I. et al. (2022). [cite: 107, 108]
  11. Arbab, A. I. & Alsaawi, N. S. (2021). [cite: 109]
  12. Arbab, A. I. & Mohamed, F. O. (2021). [cite: 110]
  13. Arbab, A. I. (2021). [cite: 111, 112]
  14. Arbab, A. I. (2021). [cite: 113]
  15. Arbab, A. I. (2021). [cite: 115]
  16. Arbab, A. I. (2021). [cite: 116, 117]
  17. Arbab, A. I. (2020). [cite: 118]
  18. Arbab, A. I. (2019). [cite: 119]
  19. Arbab, A. I. (2019). [cite: 120]
  20. Arbab, A. I. (2019). [cite: 121]
  21. Arbab, A. I. (2019). [cite: 122]
  22. Arbab, A. I. (2019). [cite: 123]
  23. Moore, E. A. et al. (2019). [cite: 124, 125]
  24. Arbab, A. I. & Al-Ajmi, M. (2018). [cite: 129]
  25. Arbab, A. I. (2018). [cite: 130]
  26. Arbab, A. I. & Al-Ajmi, M. (2018). [cite: 132]
  27. Arbab, A. I. (2017). [cite: 134]
  28. Arbab, A. I. (2017). [cite: 135]
  29. Arbab, A. I. (2017). [cite: 137]
  30. Arbab, A. I. (2015). [cite: 147]
  31. Arbab, I. A. (2014). [cite: 149]
  32. Arbab, I. A. (2014). [cite: 151]
  33. Arbab, I. A. (2013). [cite: 158]
  34. Arbab, I. A. (2012). [cite: 163]
  35. Arbab, I. A. (2011). [cite: 169]
  36. Arbab, I. A. (2010). [cite: 176, 177]
  37. Arbab, I. A. (2010). [cite: 182, 183]
  38. Arbab, I. A. (2009). [cite: 190]
  39. Arbab, I. A. (2004). [cite: 201, 202]
  40. Arbab, I. A. (2003). [cite: 204, 205]
  41. Arbab, I. A. & Abdel Rahman, A.-M. (1994). [cite: 218, 219]



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