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Minimally invasive measurement of work in coherent quantum systems

Cyril Elouard, Karen Hovhannisyan, Giulia Rubino
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⚡ Quantum Brief
A team led by Cyril Elouard, Karen Hovhannisyan, and Giulia Rubino has introduced a minimally invasive method to measure work fluctuations in coherent quantum systems without disrupting their energetics. Their approach, grounded in Heisenberg picture Hamiltonian variations, preserves critical coherences and reproduces unmeasured work values while ensuring positive probabilities. The scheme derives modified Jarzynski and Crooks relations, includes coherence-induced corrections, and quantifies coherent engine performance where traditional two-point measurements fail. Requiring only a single measurement, it also predicts work for subsequent unitary transformations and enables a Maxwell-demon protocol that outperforms energy-based feedback engines for coherent work extraction.
Why it matters

This breakthrough allows precise quantification of work in quantum engines without erasing coherence, unlocking more accurate thermodynamic characterizations and enabling advanced feedback protocols for quantum advantage.

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Quantum Physics arXiv:2607.02652 (quant-ph) [Submitted on 2 Jul 2026] Title:Minimally invasive measurement of work in coherent quantum systems Authors:Cyril Elouard, Karen Hovhannisyan, Giulia Rubino View a PDF of the paper titled Minimally invasive measurement of work in coherent quantum systems, by Cyril Elouard and 2 other authors View PDF HTML (experimental) Abstract:A central challenge in quantum thermodynamics is to access work fluctuations in coherent processes without distorting the energetics of the unmeasured evolution. In standard two-point schemes, the initial energy measurement dephases coherent inputs, causing the measured average work to differ from that of the unmeasured evolution. Here, we develop an operational scheme for accessing work statistics for closed quantum systems based on the abstract notion of variation in the Heisenberg picture Hamiltonian. This scheme preserves energetically relevant coherences, thereby faithfully reproducing unmeasured work, while still producing positive probabilities. We derive modified Jarzynski and Crooks relations, as well as a thermodynamic uncertainty relation, identifying coherence-induced correction terms. Furthermore, we show that this scheme can reliably quantify the performance of a coherent engine in situations where the two-point energy measurement would suppress work output. In addition, the scheme requires only a single measurement and can predict the work associated with a subsequent unitary transformation. We exploit this feature to construct a Maxwell-demon protocol that can outperform energy-based feedback engines for coherent work extraction. Our results establish this scheme as a framework for accessing coherent work fluctuations without erasing the coherence that drives quantum thermodynamic performance. Comments: Subjects: Quantum Physics (quant-ph) Cite as: arXiv:2607.02652 [quant-ph] (or arXiv:2607.02652v1 [quant-ph] for this version) https://doi.org/10.48550/arXiv.2607.02652 Focus to learn more arXiv-issued DOI via DataCite Submission history From: Giulia Rubino [view email] [v1] Thu, 2 Jul 2026 18:00:00 UTC (189 KB) Full-text links: Access Paper: View a PDF of the paper titled Minimally invasive measurement of work in coherent quantum systems, by Cyril Elouard and 2 other authorsView PDFHTML (experimental)TeX Source view license Current browse context: quant-ph new | recent | 2026-07 References & Citations INSPIRE HEP NASA ADSGoogle Scholar Semantic Scholar export BibTeX citation Loading... BibTeX formatted citation × loading... Data provided by: Bookmark Bibliographic Tools Bibliographic and Citation Tools Bibliographic Explorer Toggle Bibliographic Explorer (What is the Explorer?) Connected Papers Toggle Connected Papers (What is Connected Papers?) Litmaps Toggle Litmaps (What is Litmaps?) scite.ai Toggle scite Smart Citations (What are Smart Citations?) Code, Data, Media Code, Data and Media Associated with this Article alphaXiv Toggle alphaXiv (What is alphaXiv?) Links to Code Toggle CatalyzeX Code Finder for Papers (What is CatalyzeX?) DagsHub Toggle DagsHub (What is DagsHub?) GotitPub Toggle Gotit.pub (What is GotitPub?) Huggingface Toggle Hugging Face (What is Huggingface?) ScienceCast Toggle ScienceCast (What is ScienceCast?) Demos Demos Replicate Toggle Replicate (What is Replicate?) Spaces Toggle Hugging Face Spaces (What is Spaces?) Spaces Toggle TXYZ.AI (What is TXYZ.AI?) Related Papers Recommenders and Search Tools Link to Influence Flower Influence Flower (What are Influence Flowers?) Core recommender toggle CORE Recommender (What is CORE?) Author Venue Institution Topic About arXivLabs arXivLabs: experimental projects with community collaborators arXivLabs is a framework that allows collaborators to develop and share new arXiv features directly on our website. Both individuals and organizations that work with arXivLabs have embraced and accepted our values of openness, community, excellence, and user data privacy. arXiv is committed to these values and only works with partners that adhere to them. Have an idea for a project that will add value for arXiv's community? Learn more about arXivLabs. Which authors of this paper are endorsers? | Disable MathJax (What is MathJax?)

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Source: arXiv Quantum Physics