Universal Characterization of Quantum Vacuum Measurement Engines
Abstract
Quantum measurements can inject energy into quantum systems, enabling engines whose operation is powered entirely by measurements. We develop a general theory of quantum vacuum measurement engines by introducing the quantum vacuum bending function (QVBF), a quantity that characterizes the lowering of the ground-state energy due to interactions. We show that all thermodynamic observables, including work and efficiency, are governed solely by the shape of the ground-state energy landscape encoded in the QVBF, regardless of microscopic details. We further demonstrate that work fluctuations are defined by the curvature of QVBF modulated by a model-dependent quantity, and are constrained by a generalized quantum fluctuation relation that involves the interplay between quantum Fisher information and the ground-state energy landscape. Exactly solvable models and numerical simulations of single and many-body systems confirm the theory and illustrate how the QVBF alone determines the performance of quantum vacuum measurement engines.
Keywords
Cite
@article{arxiv.2602.03706,
title = {Universal Characterization of Quantum Vacuum Measurement Engines},
author = {Robert Czupryniak and Bibek Bhandari and Paolo Andrea Erdman and Andrew N Jordan},
journal= {arXiv preprint arXiv:2602.03706},
year = {2026}
}
Comments
26 pages: 6 pages - main body, 20 pages - supplementary material. 6 figures, 2 tables