We use the theory of open quantum systems to study quantum thermal machines, deriving their master equations to understand how they evolve in time. We consider three different working substances coupled to heat baths that may act as engines, refrigerators, accelerators or dissipators. The first is a network of driven quantum harmonic oscillators where we study the effect that the driving speed has on the operation of the system. We see how squeezing one of the baths may lead to a more efficient engine as well as the generation of entanglement within the system. We then investigate the use of coherence in the baths as a resource to improve the performance of a quantum thermal machine whose working substance consists of a single qubit. Finally, we introduce a rotor to a system of two qubits to create an autonomous quantum machine capable of converting heat flow into useful mechanical work. We also study both the heat and angular momentum rectification that may be accomplished by this machine.
| Date of Award | Jul 2023 |
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| Original language | English |
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| Awarding Institution | - Queen's University Belfast
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| Sponsors | Engineering and Physical Sciences Research Council |
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| Supervisor | Gabriele De Chiara (Supervisor) & Mauro Paternostro (Supervisor) |
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- quantum thermodynamics
- open quantum systems
- continuous variables
- collision model
Heat transport in quantum devices
Leitch, H. (Author). Jul 2023
Student thesis: Doctoral Thesis › Doctor of Philosophy