The Compton-Schwarzschild correspondence from extended de Broglie relations
Matthew J. Lake, Bernard Carr

TL;DR
This paper proposes modified de Broglie relations to unify quantum mechanics and gravity near the Planck scale, leading to a consistent interpretation of particle and black hole radii and a modified Schrödinger equation.
Contribution
It introduces a correction to the de Broglie relations that extends quantum wave descriptions into the high-energy regime where quantum gravity effects are significant.
Findings
Recovers Schwarzschild radius for high energies
Reproduces standard Compton wavelength at low energies
Reverses uncertainty principle inequality near Planck mass
Abstract
The Compton wavelength gives the minimum radius within which the mass of a particle may be localized due to quantum effects, while the Schwarzschild radius gives the maximum radius within which the mass of a black hole may be localized due to classial gravity. In a mass-radius diagram, the two lines intersect near the Planck point , where quantum gravity effects become significant. Since canonical (non-gravitational) quantum mechanics is based on the concept of wave-particle duality, encapsulated in the de Broglie relations, these relations should break down near . It is unclear what physical interpretation can be given to quantum particles with energy , since they correspond to wavelengths or time periods in the standard theory. We therefore propose a correction to the standard de Broglie relations, which gives rise to…
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