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Efficient and tunable Aharonov-Bohm quantum heat engine

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arxiv 1905.12672 v2 pith:5U2ZY73M submitted 2019-05-29 cond-mat.mes-hall quant-ph

classification cond-mat.mes-hallquant-ph
keywords engineheatquantumaharonov-bohmtwo-terminalbiasefficiencyinterferometer
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abstract

We propose a quantum heat engine based on an Aharonov-Bohm interferometer in a two-terminal geometry, and investigate its thermoelectric performances in the linear response regime. Sizeable thermopower (up to $\sim 0.3\,\text{mV}$/K) as well as $ZT$ values largely exceeding unity can be achieved by simply adjusting parameters of the setup and temperature bias across the interferometer leading to thermal efficiency at maximum power approaching $30\%$ of the Carnot limit. This is close to the optimal efficiency at maximum power achievable for a two-terminal heat engine. Changing the magnetic flux, the asymmetry of the structure, a side-gate bias voltage through a capacitively-coupled electrode and the transmission of the T-junctions connecting the AB ring to the contacts allows to finely tune the operation of the quantum heat engine. The exploration of the parameters' space demonstrates that the high performances of the Aharonov-Bohm two-terminal device as a quantum heat engine are stable over a wide range of temperatures and length imbalances, promising towards experimental realization.

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  1. Quasiperiodic quantum heat engines with a mobility edge

    cond-mat.dis-nn 2019-08 conditional novelty 6.0 of 10

    A tunable mobility edge in the generalized Aubry-André-Harper model acts as an energy filter that yields thermoelectric figures of merit up to ZT ≈ 60 and efficiencies near 40% of Carnot at maximum power.

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