Enhancement and Suppression of Decay Rates in an Accelerated Fermionic Cavity Coupled to a Massive Field
Vladimir Toussaint
Abstract
We study a (1+1)-dimensional model in which a massless Dirac field, initially in an excited state inside a uniformly accelerated cavity, decays to its ground state, accompanied by the excitation of an external massive Dirac field of mass M, through a local coupling confined to the physical extent of the cavity. The confinement mechanism is modeled via MIT bag boundary conditions and their probabilistic extensions, which depend on a boundary angle θ∈[0,2π) and s∈(0,1). For intermediate-sized cavities (a l c2) with light external massive Dirac field (Mc2 a/c), we demonstrate that the total long-time asymptotic decay rate factorizes as Γacc/ Γin Fg FT with Γin the inertial decay rate. Here, Fg=al/c2(1 + al/c2) is a geometric factor, and FT= (1 + e-2πβ)-1 is the thermal stimulation factor from the Unruh bath (β= Ω1 ca =(1+s)π(1 + a l/c2)). Crucially, in this regime, the thermal factor FT remains approximately unity for all admissible boundary conditions, while the geometric factor a l/c2(1 + a l/c2) produces measurable enhancements up to 26\% for realistic parameters (a=1020 m/s2, l=500~μm), and represents a measurable signature accessible through quantum simulation platforms. In contrast, for heavy external fermionic fields (such as the electron field), the condition M c2 a / c is satisfied at all achievable accelerations, placing the system in a regime of exponential suppression, Γacc/Γin (-2 M c2 / ( a/c)), for all cavity sizes....
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