Radiation pressure on a submerged absorptive partial reflector deduced from the Doppler shift
Masud Mansuripur, Armis R. Zakharian

TL;DR
This paper uses Doppler shift analysis to derive the photon momentum in a submerged absorptive reflector, confirming results consistent with Maxwell's equations and exploring effects in negative refractive index media.
Contribution
It introduces a Doppler shift-based method to determine photon momentum in a submerged, partially absorptive medium, including negative index materials.
Findings
Photon momentum in the medium is deduced from Doppler shift arguments.
No reversed Doppler shift occurs when the reflector is detached from a negative-index medium.
Results align with Maxwell's equations and Lorentz law of force.
Abstract
When a light pulse is reflected from a mirror, energy and momentum are exchanged between the electromagnetic field and the material medium. The resulting change in the energy of the reflected photons is directly related to their Doppler shift arising from the change in the state of motion of the mirror. Similarly, the Doppler shift of photons that enter an absorber is intimately tied to the kinetic energy and momentum acquired by the absorber in its interaction with the incident light. The argument from the Doppler shift yields expressions for the exchanged energy and momentum that are identical with those obtained from Maxwell's equations and the Lorentz law of force, despite the fact that the physical bases of the two methods are fundamentally different. Here we apply the Doppler shift argument to a submerged partial reflector (one that absorbs a fraction of the incident light),…
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