Relativistic and gravitational transformations in electrochemistry and nuclear magnetic resonance spectroscopy
Mirza Wasif Baig

TL;DR
This paper develops relativistic and gravitational models for electrode potentials and NMR spin energies, revealing their Lorentz-variant nature and implications for electrochemistry and spectroscopy in strong gravitational fields.
Contribution
It introduces a novel relativistic Lorentz transformation for electrode potentials and links gravitational effects to potential decreases, unifying these with NMR spin energy transformations.
Findings
Electrode potential undergoes Lorentz transformation due to relativistic effects.
Gravitational fields cause a decrease in electrode potential via graviton flux.
NMR spin energy is shown to be Lorentz-variant, affecting Hamiltonian descriptions.
Abstract
A relativistic transformation of the electrode potential has been derived to account for time dilation effects in electrode processes. This newly formulated Lorentz transformation is interpreted in terms of the generation of spin-2 boson gravitons originating from the fusion of spin-1 virtual photons, which subsequently escape into higher dimensions. Gravitational transformations of the electrode potential have also been derived, explaining the observed decrease in cell potential under stronger gravitational fields. The reduction in electrode potential near a gravitational source is attributed to a greater flux of gravitons escaping into higher dimensions in stronger gravitational fields compared to weaker ones. Similarly, the potential energy associated with the spin of magnetically active nuclei in an applied magnetic field, as observed in nuclear magnetic resonance (NMR)…
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Taxonomy
TopicsElectrochemical Analysis and Applications · Advanced Chemical Sensor Technologies
