Stable Causality and Microcausality for Drummond-Hathrell Photons
Madhukar Deb, Jay Desai, Diptimoy Ghosh

TL;DR
This paper investigates whether superluminal photon propagation in the Drummond-Hathrell effective action violates causality in curved spacetime, using global causal structure and microcausality diagnostics, and finds it remains causally benign within the EFT regime.
Contribution
It provides a symmetry-independent analysis of causality for superluminal photons in curved spacetime, combining global and quantum diagnostics within the effective field theory framework.
Findings
Superluminal propagation does not lead to closed causal curves.
Photon microcausality remains intact in studied examples.
Superluminality is causally benign within the EFT validity regime.
Abstract
Local superluminal photon propagation arises at in the Drummond Hathrell (DH) effective action obtained by integrating out the electron in QED coupled to gravity. Whether such superluminality implies a genuine violation of causality in curved spacetime is subtle and remains conceptually nontrivial. In this work we revisit this question using two complementary and largely symmetry-independent diagnostics. First, we analyse the global causal structure of the effective (optical) metric governing DH photon propagation and identify conditions under which it remains stably causal, thereby excluding the formation of closed causal curves. Second, from a quantum-field-theoretic perspective, we examine microcausality by treating the gravitational background as a fixed Lorentz-breaking field and applying flat-spacetime analyticity bounds to the photon commutator…
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Taxonomy
TopicsAstrophysical Phenomena and Observations · Quantum Electrodynamics and Casimir Effect · Noncommutative and Quantum Gravity Theories
