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Robustness as a thermodynamic currency: work advantages and preparation costs of nonclassical states

arXiv Quantum Physics
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⚡ Quantum Brief
Researchers proved any quantum non-classicality—magic, coherence, or correlations—can enhance thermodynamic work extraction, offering measurable advantages over classical systems. The study establishes non-classicality as a universal thermodynamic resource. Work extraction gains scale with a state’s "robustness," a quantifiable measure of its non-classicality. Higher robustness yields greater work output ratios compared to resource-free states, with advantages growing alongside system dimensionality. A novel cyclic quench/thermalization protocol, using Hamiltonians derived from robustness witnesses, enables consistent work-extraction benefits. This method applies universally across convex quantum resource theories. Preparing non-classical states demands significantly more thermodynamic work than classical states. The cost gap persists even for optimal protocols, highlighting a fundamental trade-off in quantum resource utilization. The findings bridge quantum resource theory and thermodynamics, assigning operational meaning to robustness measures by linking them directly to work advantages and preparation costs.
Robustness as a thermodynamic currency: work advantages and preparation costs of nonclassical states

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Quantum Physics arXiv:2603.04618 (quant-ph) [Submitted on 4 Mar 2026] Title:Robustness as a thermodynamic currency: work advantages and preparation costs of nonclassical states Authors:Luis Pedro Garcıa-Pintos, Tanmoy Biswas, Chandan Datta View a PDF of the paper titled Robustness as a thermodynamic currency: work advantages and preparation costs of nonclassical states, by Luis Pedro Garc{\i}a-Pintos and 2 other authors View PDF HTML (experimental) Abstract:Understanding whether uniquely quantum features can provide concrete advantages in thermodynamic processes is a central objective of quantum thermodynamics. A key challenge is quantifying how different forms of non-classicality can be systematically harnessed to enhance thermodynamic tasks. In light of this, we prove that any form of non-classicality can serve as a thermodynamic resource. In particular, any system that possesses quantum magic, coherence, or non-classical correlations can be leveraged to extract higher amounts of work than if the system does not possess such resources. The quantum thermodynamic advantages--quantified by the ratio between work extractable from a resource state and work extractable in its absence--increase with the resource robustness. We show that for any convex quantum resource theory, any resourceful state can yield a work-extraction advantage over all free states via a cyclic quench/thermalization protocol whose Hamiltonian is engineered from an optimal robustness witness. We illustrate concrete examples in which the robustness measures increase with the system's dimension, yielding quantum thermodynamic advantages that scale with it. In contrast, we also show that preparing a resource state (e.g., one with magic, coherence, or non-classical correlations) can be significantly more thermodynamically costly than preparing any state without such a resource. Concretely, there always exists a protocol that can prepare any non-resourceful state at significantly less work than it takes to prepare a resourceful state. Overall, our results provide operational meaning to robustness measures of quantum resources in terms of their thermodynamic costs and advantages. Subjects: Quantum Physics (quant-ph) Cite as: arXiv:2603.04618 [quant-ph] (or arXiv:2603.04618v1 [quant-ph] for this version) https://doi.org/10.48550/arXiv.2603.04618 Focus to learn more arXiv-issued DOI via DataCite (pending registration) Submission history From: Luis Pedro García-Pintos [view email] [v1] Wed, 4 Mar 2026 21:23:27 UTC (88 KB) Full-text links: Access Paper: View a PDF of the paper titled Robustness as a thermodynamic currency: work advantages and preparation costs of nonclassical states, by Luis Pedro Garc{\i}a-Pintos and 2 other authorsView PDFHTML (experimental)TeX Source view license Current browse context: quant-ph new | recent | 2026-03 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?) Links to Code Toggle Papers with Code (What is Papers with Code?) 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