Electromagnetic radiation is usually described as energy propagating through space from a source to a receiver. While this picture is operationally effective, the mathematical structure of electromagnetic theory itself places surprisingly few requirements on what occurs between emission and absorption. This work examines electromagnetic energy transfer directly from the standpoint of Maxwell’s equations, focusing on the role of Poynting’s theorem and the Green-function formulation of the field. The analysis shows that all measurable aspects of radiation—emission rates, absorption, and environmental dependence—are fully determined by local field–matter interaction together with the global structure imposed by boundary conditions and geometry. Within this framework, energy is realized only where matter responds to the electromagnetic field, while the relation between spatially separated events is fixed by the Green tensor connecting source and receiver. No additional dynamical assumptions are introduced, and no modification of established theory is required. The discussion highlights how a wide range of experimentally observed phenomena, including environmentally modified emission and resonant energy transfer, naturally reflect this structural organization. Rather than proposing new physics, the work offers a clarified view of how electromagnetic theory already encodes energy exchange through event-to-event relations defined by its equations. The paper aims to provide a transparent and accessible perspective on electromagnetic energy transfer that follows directly from standard formalism and may help unify classical and quantum descriptions under a common structural viewpoint.
Luka Gluvić (Tue,) studied this question.