This work presents a conceptual and experimental proposal for directional phase modulation of coherent light in the presence of strong, structured magnetic fields. The framework is based on a dual-network approach (referred to as the Dual Network Theory, including the Law of Compromise and the Law of Cyclicity, also referred to as "Rachel Theory"), in which physical interactions are described as an interplay between a stable structural network and a dynamic network of propagating frequencies. The central hypothesis is that electromagnetic fields with strong directional geometry may induce spatially varying phase gradients in propagating light, leading to measurable deviations in interference patterns. In particular, when multiple coherent light beams converge from different directions toward a dominant field region, localized phase distortions may arise. This proposal does not assume discontinuous behavior; rather, it emphasizes that such effects, if present, would manifest as continuous field-driven gradients rather than sharp transitions. A preliminary numerical simulation supporting the general stability and behavior of the underlying framework has been conducted, indicating consistent emergent structures under varying initial conditions. An effective experimental configuration involves multiple coherent beams incident from different directions under near-vacuum conditions, interacting within a region dominated by a strong magnetic field, in order to maximize potential phase-gradient effects. The goal of this work is to motivate experimental investigation of these effects and to explore whether field geometry, beyond intensity alone, can influence coherent light propagation in measurable ways.
Shlomi Ryan (Sun,) studied this question.