Accelerated paths and Unruh effect II: finite time detector response in (Anti) de Sitter spacetime and Huygen's Principle
arXiv:2301.08717 · doi:10.1140/epjc/s10052-023-12245-9
Abstract
We study the finite time response of an Unruh-DeWitt particle detector described by a qubit (two-level system) moving with uniform constant acceleration in maximally symmetric spacetimes. The dimensional massless fermionic response function in de Sitter (dS) background is found to be identical to that of a detector linearly coupled to a massless scalar field in dimensional dS background. Furthermore, we visit the status of Huygen's principle in the Unruh radiation observed by the detector.
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