Cyclic Quantum Engines Enhanced by Strong Bath Coupling
Abstract
While strong system-bath coupling produces rich and interesting phenomena, applications to quantum thermal engines have been so far pointing mainly at detrimental effects. The delicate trade-off between efficiency loss due to strong coupling and power increase due to faster equilibration, while acknowledged, remains largely unexplored owing to the challenge of assessing the equilibration time precisely. Here, we overcome this obstacle by exploiting exact numerical simulations based on the hierarchical equations of motion (HEOM) formalism. We show that a quantum Otto cycle can perform better at strong (but not ultrastrong) coupling in that the product of the efficiency and that output power is maximized in this regime. In particular, we show that strong coupling allows one to obtain engines with larger efficiency than their weakly coupled counterparts, while sharing the same output power. Conversely, one can design strongly coupled engines with larger power than their weakly coupled counterparts, while sharing the same efficiency. Overall, our results provide situations where strong coupling can directly enhance the performance of thermodynamic operations, reinforcing the importance of studying quantum thermal engines beyond standard configurations.
- Publication:
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Physical Review Applied
- Pub Date:
- August 2023
- DOI:
- arXiv:
- arXiv:2304.03267
- Bibcode:
- 2023PhRvP..20b4038L
- Keywords:
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- Quantum Physics;
- Condensed Matter - Statistical Mechanics
- E-Print:
- 10 + 11 pages, 9 + 3 figures. Slight changes in the introduction. Accepted for publication in Phys. Rev. Applied