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IFIMAColloquium finds quantum heat engines face limits on precision

Dr. Donovan
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⚡ Quantum Brief
Janine Splettstösser is exploring the limits of precision in quantum heat engines, focusing on how fluctuations impact power production at small scales. Splettstösser’s recent results reveal that thermodynamic and kinetic constraints govern these fluctuations, a critical consideration for devices operating far from equilibrium. “In small-scale thermodynamic devices, fluctuations play an important role,” she notes, challenging conventional thermodynamics where fluctuations are typically negligible. This work addresses a key difficulty in applying established theories, developed for weakly coupled systems, to steady-state thermoelectric engines with strong coupling to their surroundings.
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Janine Splettstösser is exploring the limits of precision in quantum heat engines, focusing on how fluctuations impact power production at small scales. Splettstösser’s recent results reveal that thermodynamic and kinetic constraints govern these fluctuations, a critical consideration for devices operating far from equilibrium. “In small-scale thermodynamic devices, fluctuations play an important role,” she notes, challenging conventional thermodynamics where fluctuations are typically negligible. This work addresses a key difficulty in applying established theories, developed for weakly coupled systems, to steady-state thermoelectric engines with strong coupling to their surroundings. Thermodynamic and Kinetic Uncertainty Relations Constrain Quantum Engine Fluctuations Fluctuation-dissipation theorems, tools for linking fluctuations to average output, become less accurate when applied to systems operating far from equilibrium; steady-state thermoelectric heat engines exemplify this limitation. Existing thermodynamic and kinetic uncertainty relations (TURs and KURs) were primarily developed for weakly coupled open quantum systems, creating a mismatch with the strong coupling characteristic of practical heat engine designs. Janine Splettstösser’s recent work addresses this challenge by investigating how thermodynamic properties inherently constrain fluctuations within these devices. Splettstösser’s results demonstrate that fluctuations in small-scale thermodynamic devices are not unbounded, but rather governed by both thermodynamic and kinetic limitations, a departure from classical expectations. These constraints have direct implications for understanding power production using quantum systems subjected to temperature differences and potentially guiding future designs toward maximizing efficiency within inherent physical boundaries. Splettstösser presented these findings at the IFIMAColloquium, detailing the interplay between constraints and fluctuations in these complex systems. In small-scale thermodynamic devices, fluctuations play an important role (in contrast to standard classical thermodynamics). Source: https://www.ifimac.uam.es/ifimacolloquium-talks/janine-splettstosser-what-constrains-the-precision-of-a-quantum-heat-engine/ More like thisPhysicsAtlas Technologies helps Oxford physicists track entanglement in LHC’s Z bosonsQuantum Research NewsTU Wien researchers find entanglement in 1cm ‘strange metal’ crystalQuantum Research NewsKimi Onoda Visits Delft to Deepen Quantum TiesPhysicsCMS sees intact protons after LHC collisions, reviving old physicsStay currentSee today’s quantum computing news on Quantum Zeitgeist for the latest breakthroughs in qubits, hardware, algorithms, and industry deals. Tags: Dr. Donovan Dr. Donovan is a futurist and technology writer covering the quantum revolution. Where classical computers manipulate bits that are either on or off, quantum machines exploit superposition and entanglement to process information in ways that classical physics cannot. Dr. Donovan tracks the full quantum landscape: fault-tolerant computing, photonic and superconducting architectures, post-quantum cryptography, and the geopolitical race between nations and corporations to achieve quantum advantage. The decisions being made now, in research labs and government offices around the world, will determine who controls the most powerful computers ever built. Latest Posts by Dr. Donovan: Falqon system gains €2.5 million for quantum network buildout September 15, 2026 Quandela and NVIDIA link quantum processors to AI with NVQLink September 15, 2026 Zapata Quantum’s CEO joins Boston’s ‘Power 50 September 15, 2026

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