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arXiv · 2608.02742

Determination of the Angular Momentum of Radiated Gravitons, Scalars, and Dark Photons from Binary Orbits

Abstract

We compute the energy and angular momentum radiated by compact binaries through gravitational waves, scalar and vector fields, using the field-theoretic approach. We observe that each emitted graviton carries away an angular momentum of $\dot{J}/\dot {N}\simeq 2\hbar$, not only for elliptical orbits (as has already been pointed out by Page [arXiv:2409.00305]) but also for hyperbolic orbits. We extend the analysis to scalar and vector radiation and find that the angular momentum carried by each emitted quantum of radiation is approximately $\hbar$, i.e., $\dot{J}/\dot{N}\simeq \hbar$ for both types of radiation. We demonstrate that the radiated energy and angular momentum of binary systems can be determined from the evolution of the orbital angular frequency and the eccentricity of the quasi-Kepler orbit. However, a gauge-invariant decomposition of the angular momentum carried by the emitted particles into the spin and orbital components is not possible.

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BibTeXRIS

Arpan Hait, Subhendra Mohanty. 2026-08-03. Determination of the Angular Momentum of Radiated Gravitons, Scalars, and Dark Photons from Binary Orbits. https://arxiv.org/abs/2608.02742

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