Hybrid quantum-classical simulations of semiclassical gravity
Carlos Fulgado-Claudio, Daniel Gonz\'alez-Cuadra, Jose Beltr\'an Jim\'enez, Alejandro Bermudez

TL;DR
This paper introduces a hybrid quantum-classical algorithm for simulating real-time semiclassical gravity, enabling self-consistent modeling of quantum field backreaction on classical fields with potential applications in cosmology.
Contribution
The work develops a novel iterative protocol combining quantum and classical simulations to study semiclassical backreaction, with explicit benchmarking in scalar-tensor gravity models.
Findings
Algorithm demonstrates convergence and robustness in continuum limit.
Effective in modeling chameleon screening in modified gravity.
Handles quantum shot noise in simulations.
Abstract
We propose a hybrid quantum-classical algorithm for the simulation of real-time dynamics in interacting quantum field theories coupled to classical fields, focusing on the self-consistent estimation of semiclassical backreaction. By discretizing space and time, we construct an iterative protocol that simulates the Trotterized dynamics of the quantum fields subject to the dynamical classical fields. By estimating certain quantum expectation values through a set of projective measurements, we source the equations of motion of the classical fields, and solve them numerically to feed them forward to the quantum simulation in an iterative self-consistent loop. Semiclassical backreaction is relevant in various fields of physics, particularly in cosmology, where quantum matter fluctuations affect the gravitational field dynamics, and a controlled renormalization must be carefully considered to…
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Taxonomy
TopicsNoncommutative and Quantum Gravity Theories · Quantum Electrodynamics and Casimir Effect · Cosmology and Gravitation Theories
