Radiation-reaction-induced transitions of two maximally entangled atoms in non-inertial motion
Wenting Zhou, Hongwei Yu

TL;DR
This paper investigates how non-inertial motion influences the energy transitions of two entangled atoms interacting with a quantum field, revealing unique effects of acceleration and entanglement on atomic energy dynamics.
Contribution
It applies the DDC formalism to analyze energy change rates in entangled atoms under non-inertial motion, highlighting the distinct roles of vacuum fluctuations and radiation reaction.
Findings
Vacuum fluctuations are separation-independent for certain states.
Radiation reaction depends on interatomic separation.
Non-inertial motion causes nonthermal energy transition effects.
Abstract
We apply the DDC formalism [proposed by Dalibard, Dupont-Roc and Cohen-Tannoudji] to study the average rate of change of energy of two identical two-level atoms interacting with the vacuum massless scalar field in synchronized motion along stationary trajectories. By separating the contributions of vacuum fluctuations and atomic radiation reaction, we first show that for the two-atom system initially prepared in the factorizable eigenstates and , where and represent the ground state and the excited state of a single atom respectively, both vacuum fluctuations and atomic radiation reaction contribute to the average rate of change of energy of the two-atom system, and the contribution of vacuum fluctuations is independent of the interatomic separation while that of atomic radiation reaction is dependent on it. This is contrary to the existing…
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