Xuereb, J. (2026). Temperature change can solve the Deutsch-Jozsa problem: An exploration of thermodynamic query complexity. Physical Review A, 113(1), Article 012420. https://doi.org/10.1103/qky6-2bfs
E141-08 - Forschungsbereich Quantum Optics and Quantum Information
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Journal:
Physical Review A
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ISSN:
2469-9926
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Date (published):
Jan-2026
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Number of Pages:
10
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Publisher:
AMER PHYSICAL SOC
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Peer reviewed:
Yes
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Keywords:
Quantum Thermodynamics; Quantum Computation
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Abstract:
We demonstrate how a single heat exchange between a probe thermal qubit and multiqubit thermal machine encoding a Boolean function can determine whether the function is balanced or constant, thus providing a thermodynamic solution to the Deutsch-Jozsa problem. We introduce a thermodynamic model of quantum query complexity, showing how qubit thermal machines can act as oracles, queried via heat exchange with a probe. While the Deutsch-Jozsa problem requires an exponential encoding in the number of oracle bits, we also explore a restricted Bernstein-Vazirani problem, which admits a linear thermal oracle and a single thermal query solution. We establish bounds on the number of samples needed to determine the probe temperature encoding the solution for the Deutsch-Jozsa problem, showing that it remains constant with problem size. Additionally, we propose a proof-of-principle experimental implementation to solve the three-bit Bernstein-Vazirani problem via thermal kickback. This work bridges thermodynamics and complexity theory, suggesting that quantum thermodynamics could provide an unconventional route to computing beyond classical computation.
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Research Areas:
Quantum Many-body Systems Physics: 80% Computer Science Foundations: 20%