A high-efficiency double quantum dot heat engine
Y. S. Liu, Xifeng Yang, Xuekun Hong, Monish Balaji S, F. Chi, Yating Guo
Abstract
Y. S. Liu, Xifeng Yang, Xuekun Hong, Monish Balaji S, F. Chi, Yating Guo
Abstract
High-efficiency heat engine requires a large output power at the cost of less input heat energy as possible. Here we propose a heat engine composed of serially connected two quantum dots sandwiched between two metallic electrodes. The efficiency of the heat engine can approach the maximum allowable Carnot efficiency ηC. We also find that the strong intradot Coulomb interaction can induce additional work regions for the heat engine, whereas the interdot Coulomb interaction always suppresses the efficiency. Our results presented here indicate a way to fabricate high-efficiency quantum-dot thermoelectric devices.
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High-efficiency heat engine requires a large output power at the cost of less input heat energy as possible. Here we propose a heat engine composed of serially connected two quantum dots sandwiched between two metallic electrodes. The efficiency of the heat engine can approach the maximum allowable Carnot efficiency ηC. We also find that the strong intradot Coulomb interaction can induce additional work regions for the heat engine, whereas the interdot Coulomb interaction always suppresses the efficiency. Our results presented here indicate a way to fabricate high-efficiency quantum-dot thermoelectric devices.
Key concepts: Heat engine, Carnot cycle, Work (physics), Energy conversion efficiency, Quantum dot, Thermal efficiency, Maximum power principle, Materials science