WHY THE ELECTRON IS NEGATIVELY CHARGED AND THE PROTON POSITIVELY?
DOI:
https://doi.org/10.20319/mijst.2020.61.2632Keywords:
Electric Charge, Electron, Proton, Neutron, Subatomic Particle, Elementary Particle, Saleh Theory, Negative Charge, Positive ChargeAbstract
Electron, proton and neutron are the most important Subatomic particles which made atoms. Between them neutron does not have any electric charge but electron is negative and against that proton is positive. We know the electron as an elementary particle and proton consists of two different kinds of elementary particles (up and down quarks). But we do not know structure of electron and proton. Saleh Theory defines a structure for electron as hollow sphere and for proton as continues texture. Here we proved that the electron and proton properties are due to its structure. So electrons moves easily and protons are like black hole because of their structure. This indicates that there is a possibility of obtaining best shape for electron and proton from Saleh Theory and it is possible to determine a structure for neutrons too which could help us to have better understand about particle physics examination.
References
Dehmelt, H. (1988). A Single Atomic Particle Forever Floating at Rest in Free Space: New Value for Electron Radius. Physica Scripta Volume T, 22, 102-110.
Editorial, e. (2012, August 13, 2012). Why an electron has a negative charge and that of a proton has positive? Retrieved from https://www.enotes.com/homework-help/why-an-electron-has-negative-charge-that-proton-353611
Saleh, Gh., Faraji, M. J., Alizadeh, R., & Dalili, A. (2018). The Superstring Theory and the Shape of Protons and Electrons. MATTER: International Journal of Science and Technology, 4(2). Retrieved from https://grdspublishing.org/index.php/matter/article/view/1518
Haken, H., Brewer, W. D., & Wolf, H. C. (2012). The Physics of Atoms and Quanta: Introduction to Experiments and Theory: Springer Berlin Heidelberg.
Krumeich, F. Properties of electrons, their interactions with matter and applications in electron microscopy.
Mohr, P. J., Newell, D. B., & Taylor, B. N. (2016). CODATA Recommended Values of the Fundamental Physical Constants: 2014. Journal of Physical and Chemical Reference Data, 45(4), 043102. doi:10.1063/1.4954402
Mohr, P. J., Taylor, B. N., & Newell, D. B. (2008). CODATA recommended values of the fundamental physical constants: 2006. Reviews of Modern Physics, 80(2), 633-730. doi:10.1103/RevModPhys.80.633
Orlov, S. (2017). Origin and Physical Properties of the Black Hole. International Journal of Astronautics and Aeronautical Engineering, 2(1).
Pal Singh, G., & Raj, B. (2013). Single electron transistor theory: A review. Paper presented at the 2013 IEEE International Conference ON Emerging Trends in Computing, Communication and Nanotechnology (ICECCN).
Pohl, R., Antognini, A., Nez, F., Amaro, F. D., Biraben, F., Cardoso, J. M., . . . Fernandes, L. M. (2010). The size of the proton. Nature, 466(7303), 213.
Proton | Definition, Mass, Charge, & Facts. In T. E. o. E. Britannica (Ed.), Encyclopædia Britannica: Encyclopædia Britannica, inc.
Weise, W., & Green, A. M. (1984). Quarks and Nuclei: World Scientific.
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