Time–Space Oscillations, Quantum Field Theory, Compton Wavelength, and Relativistic Time Dilation The intrinsic Compton frequency of a particle implies that increasing mass increases the fundamental Time--Space Oscillation (TSO) rate. At the same time, relativistic effects, such as gravitational time dilation, reduce the observable oscillation rate for bound or macroscopic systems. This apparent tension—microscopic TSO scaling up with mass versus macroscopic time dilation scaling down—can lead to confusion regarding the relation between quantum field theoretic evolution and relativistic temporal effects. (See Time Space Oscillations and Electromagnetism).In this work, we show that the same interplay arises naturally within quantum field theory, and we provide a unified framework that reconciles these two behaviors through the concept of phase synchronization of oscillators. For newcomers, a structured overview of the foundational TSO papers is available in “Time Space Oscillations. Introduction papers” (Zenodo DOI: 10.5281/zenodo.1767154). It guides readers through the core principles of TSO—Time dilation and Gravity equivalence, TSO & EM, TSO & QM—and shows how the present work fits into the broader framework.
de Leeuw Norman (Fri,) studied this question.