Quantum Theory of Mesoscopic Fractional Electric Fields in a Cavity of Viscous Medium
- 1 Department of Mathematics, University of Balochistan, Quetta, Pakistan
- 2 Department of Physics, University of Balochistan, Quetta, Pakistan
- 3 Department of Mathematics, F. G. Girls Degree College, Quetta Cantt, Pakistan
- 4 Department of Physics, University of Balochistan, Quetta, Pakistan
Abstract
With conjecture of fractional charge quantization (quantum dipole/multiple moments), Fourier transform stretching, twisting and twigging of an electron quanta and waver strings of electron quanta, the mathematical expressions for mesoscopic fractional electron fields in a cavity of viscous medium and the associated quantum dielectric susceptibility are developed. Agreement of this approach is experimentally evidenced on barite and Fanja site molecular sieves. These findings are in conformity with experimental results of 2012 Physics Nobel prize winning scientists, Serge Haroche and David J. Wineland especially for cavity quantum electro-dynamics electron and its associated mesoscopic electric fields. The mover electron quanta strings lead to warping of space and time following the behaviour of quantum electron dynamics.
- Jonscher, A.K. (1975) Physical Basis of Dielectric Loss. Nature, 253, 717-719. http://dx.doi.org/10.1038/253717a0
- Jonscher, A.K. (1983) Dielectric Relaxation in Solids. Chelsea Dielectrics Press Limited, London.
- Gormani, M., Rehman, F., et al. (2006) Quantum Behaviour of Dielectric in Dolomite of Balochistan, Pakistan. Journal of the Chemical Society of Pakistan, 28, 414-416.
- Yousaf, S., Raza, S.M. and Ahmed, M.A. (2008) Newly Developed Recursive Relationship for Fractional Quantum States and Associated Energy Eigen Values. Science International Lahore, Pakistan, 20, 255-260.
- Yousaf, S., Raza, S.M., et al. (2008) Absorption of Radiant Energy in Water: A New Conjecture and Theory of Charge Quantization in Chromotized Water Samples. Science International Lahore, Pakistan, 20, 189-195.
- Rehman, F., Raza, S.M. and Ahmed, M.A. (2009) Quantum Theory of Dielectricity and Its Application to Dolomite. Science International Lahore, Pakistan, 21, 29-32.
- Saleem, I., Sarwar, F., Raza, S.M. and Rehman, A. (2015) How Fractional Charge on an Electron in the Momentum Space Is Quantized? ASRJETS, 14, 265-272.
- Peter, A. and Grubber, P. (2007) Giant Magnetoresistance. APS News Letter.
- Haroche, S. and Daniel, K. (1989) Cavity Quantum Electodynamics. Physics Today, 42, 24-30. http://dx.doi.org/10.1063/1.881201
- Jabeen, S., Raza, S.M., et al. (2012) Quantum Mechanical Analysis on Faujasite-Type Moleculer Sieves by Using Fermi Dirac Statistics and Quantum Theory of Dielectricity. Journal of the Chemical Society of Pakistan, 24, 251-255.
- Tu, C., Siny, I.G. and Schmidt, V.H. (1994) Sequence of Dielectric Anomalies and High-Temperature Relaxation Behavior in Na1/2Bi1/2TiO3. Physical Review B, Condensed Matter, 49, 11550-11559. http://dx.doi.org/10.1103/PhysRevB.49.11550
- Christen, H.M., Mannhart, J., et al. (1994) Dielectric Properties of Spuutered Sr1/2TiO3 Films. Physical Review B, 49, 120905-12104. http://dx.doi.org/10.1103/PhysRevB.49.12095