全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

Exploring New Physics of Massive Particles and Charge Quantization

DOI: 10.4236/oalib.1110629, PP. 1-10

Subject Areas: Theoretical Physics

Keywords: Standard Model, Particle Physics, Higgs Field, Higgs Mechanism, Electroweak Interaction, Covariant Derivatives, Special Relativity, Klein Gordon Equation

Full-Text   Cite this paper   Add to My Lib

Abstract

This research seeks to understand the fundamental properties of matter, such as mass, charge, and spin, and how they interact with each other. By studying the behaviour of these particles in different environments, scientists can gain insight into the nature of the universe. This research also has implications for our understanding of dark matter and dark energy, which are believed to make up the most of the universe’s mass but remain largely mysterious. Additionally, this research may provide clues to the origin and evolution of the universe itself. The research began with a comprehensive review of existing theories that attempt to explain the origin and nature of charge quantization. Special attention is given to the standard model and quantum field theory, which provides a mathematical framework for describing both particles and their interactions. Also, this research aims to bridge the gap between our understanding of massive particles and charge quantization.

Cite this paper

Abdelgabar, M. I. and Abdallah, M. D. (2023). Exploring New Physics of Massive Particles and Charge Quantization. Open Access Library Journal, 10, e629. doi: http://dx.doi.org/10.4236/oalib.1110629.

References

[1]  Haeffner, E.A. (2001) The Physical Origin of Mass and Charge 2. https://www.google.com/url?sa=t&source=web&rct=j&opi=89978449&url=https://arxiv.org/pdf/physics/0010050&ved=2ahUKEwjc6r-Vq4iCAxWKTaQEHToAB0QQFnoECBUQAQ&usg=AOvVaw0PqYGct-eGQ4I7cpeUZ2wW
[2]  Allen, T.J., Efthimiou, C.J. and Spector, D. (2002) A Mechanism for Charge Quantization. https://google.com/url?sa=t&source=web&rct=j&opi=89978449&url=https://arxiv.org/pdf/hep-th/0209204&ved=2ahUKEwjb2LeGrIiCAxVkVaQEHW32BtYQFnoECBYQAQ&usg=AOvVaw3_Eaf9Ijz9NEWLCNGpua1J
[3]  Mulders, P.J. (2011) Quantum Field Theory. VU University, Amsterdam, Netherlands. http://www.nat.vu.nl/~mulders/QFT-0.pdf
[4]  Harris, P. (2002) Special Relativity. University of Sussex, East Sussex. https://giorgos.web.cern.ch/SR3.pdf
[5]  Wilczek, F. (2003) The Origin of Mass. https://physics.mit.edu/wp-content/uploads/2021/01/physicsatmit_03_wilczek_originofmass.pdf
[6]  Khrapko, R.I. (2000) What Is Mass? Physics-Uspekhi, 43, Article 1267. https://doi.org/10.1070/PU2000v043n12ABEH000778
[7]  Stahlberg, L.-O. (2015) The Higgs Boson, The God Particle, and the Correlation between Scientific and Religious Narratives. https://www.researchgate.net/publication/283452029_The_Higgs_Boson_The_God_Particle_and_the_Correlation_Between_Scientific_and_Religious_Narratives
[8]  Mohamed, H., Abdelgadir, L.M., Muhamed, M.A. and Abd-Alla, M.D. (2019) Quantum and Generalized Special Relativistic Model for Electron Charge Quantization. IOSR Journal of Applied Physics (IOSR-JAP), 11, 31-34.
[9]  Dirac, P.A.M. (1927) The Transformation Theory of Canonical Quantization. Proceedings of the Royal Society of London, 117, 610-624. https://www.rpi.edu/dept/phys/Courses/PHYS6520/DiracElectron.pdf
[10]  Arbab, I.A. (2014) The Extended Gauge Transformations. Progress in Electromagnetics Research M, 39, 107-114.
[11]  Yi, Y.G. (2020) Lagrangian Approach to Quantum Mechanics. https://arxiv.org/pdf/physics/0005044.pdf
[12]  Wu, X.-Y., Zhang, B.-J., Liu, X.-J., Li, X., Wu, Y.-H., Yan, W., Wang, Q.-C. and Cheng, S. (2011) Derivation of Nonlinear Schrödinger Equation. https://arxiv.org/pdf/1104.0138.pdf
[13]  Peccei, R.D. and Quinn, H.R. (1977) CP Conservation in the Presence of Pseudoparticles. Physical Review Letters, 38, 1440-1443. https://doi.org/10.1103/PhysRevLett.38.1440

Full-Text


comments powered by Disqus

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133

WeChat 1538708413