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Experimental Realization of a Quantum Refrigerator Driven by Indefinite Causal Orders

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abstract

Indefinite causal order (ICO) is playing a key role in recent quantum technologies. Here, we experimentally study quantum thermodynamics driven by ICO on nuclear spins using the nuclear magnetic resonance system. We realize the ICO of two thermalizing channels to exhibit how the mechanism works, and show that the working substance can be cooled or heated albeit it undergoes thermal contacts with reservoirs of the same temperature. Moreover, we construct a single cycle of the ICO refrigerator based on the Maxwell's demon mechanism, and evaluate its performance by measuring the work consumption and the heat energy extracted from the low-temperature reservoir. Unlike classical refrigerators in which the coefficient of performance (COP) is perversely higher the closer the temperature of the high-temperature and low-temperature reservoirs are to each other, the ICO refrigerator's COP is always bounded to small values due to the non-unit success probability in projecting the ancillary qubit to the preferable subspace. To enhance the COP, we propose and experimentally demonstrate a general framework based on the density matrix exponentiation (DME) approach, as an extension to the ICO refrigeration. The COP is observed to be enhanced by more than three times with the DME approach. Our work demonstrates a new way for non-classical heat exchange, and paves the way towards construction of quantum refrigerators on a quantum system.

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representative citing papers

Indefinite causal order in cavity quantum electrodynamics

quant-ph · 2025-09-02 · conditional · novelty 6.0

A theory paper shows indefinite causal order in a two-cavity Jaynes-Cummings setup can entangle non-interacting fields and swap a photon between cavities without changing the atom.

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  • Indefinite causal order in cavity quantum electrodynamics quant-ph · 2025-09-02 · conditional · none · ref 18 · internal anchor

    A theory paper shows indefinite causal order in a two-cavity Jaynes-Cummings setup can entangle non-interacting fields and swap a photon between cavities without changing the atom.