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Main Authors: Berman, P. R., Kuzmich, A., Milonni, P. W
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2504.20831
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author Berman, P. R.
Kuzmich, A.
Milonni, P. W
author_facet Berman, P. R.
Kuzmich, A.
Milonni, P. W
contents A Schrödinger-picture approach is used to calculate the field energy and angular momentum radiated by an atom undergoing spontaneous emission. The calculation is carried out using both the rotating-wave approximation (RWA) and Weisskopf-Wigner approximation (WWA). It is shown that a consistent application of the WWA leads to expressions for both the energy and angular momentum in the field that are finite for all times, in contrast to the results for a classical point dipole oscillator. Moreover, it is shown that the total angular momentum in the field is a sum of its spin and orbital components, again in contrast to the analogous results for a classical point dipole oscillator. Analytic expressions for the energy, spin angular momentum, and orbital angular momentum in the field are obtained for an atom undergoing spontaneous emission from a state having angular momentum H to a state having angular momentum G via an electric dipole transition. It is shown that the spin and orbital angular momenta in the field are equal, independent of the values of H and G. With a slight modification of the WWA, it can also be shown that the energy density in the field, the Poynting vector of the field, and the angular momentum flux of the field do not diverge at the origin.
format Preprint
id arxiv_https___arxiv_org_abs_2504_20831
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Field energy and angular momentum in spontaneous emission: A Schrödinger-picture approach
Berman, P. R.
Kuzmich, A.
Milonni, P. W
Quantum Physics
A Schrödinger-picture approach is used to calculate the field energy and angular momentum radiated by an atom undergoing spontaneous emission. The calculation is carried out using both the rotating-wave approximation (RWA) and Weisskopf-Wigner approximation (WWA). It is shown that a consistent application of the WWA leads to expressions for both the energy and angular momentum in the field that are finite for all times, in contrast to the results for a classical point dipole oscillator. Moreover, it is shown that the total angular momentum in the field is a sum of its spin and orbital components, again in contrast to the analogous results for a classical point dipole oscillator. Analytic expressions for the energy, spin angular momentum, and orbital angular momentum in the field are obtained for an atom undergoing spontaneous emission from a state having angular momentum H to a state having angular momentum G via an electric dipole transition. It is shown that the spin and orbital angular momenta in the field are equal, independent of the values of H and G. With a slight modification of the WWA, it can also be shown that the energy density in the field, the Poynting vector of the field, and the angular momentum flux of the field do not diverge at the origin.
title Field energy and angular momentum in spontaneous emission: A Schrödinger-picture approach
topic Quantum Physics
url https://arxiv.org/abs/2504.20831