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Otto refrigerator based on a superconducting qubit: classical and quantum performance

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arxiv 1610.02776 v3 pith:BGYOCDBB submitted 2016-10-10 cond-mat.mes-hall quant-ph

Otto refrigerator based on a superconducting qubit: classical and quantum performance

classification cond-mat.mes-hall quant-ph
keywords frequencycoolingottopowercoherentcomparedquantumregime
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We analyse a quantum Otto refrigerator based on a superconducting qubit coupled to two LC-resonators each including a resistor acting as a reservoir. We find various operation regimes: nearly adiabatic (low driving frequency), ideal Otto cycle (intermediate frequency), and non-adiabatic coherent regime (high frequency). In the nearly adiabatic regime, the cooling power is quadratic in frequency, and we find substantially enhanced coefficient of performance $\epsilon$, as compared to that of an ideal Otto cycle. Quantum coherent effects lead invariably to decrease in both cooling power and $\epsilon$ as compared to purely classical dynamics. In the non-adiabatic regime we observe strong coherent oscillations of the cooling power as a function of frequency. We investigate various driving waveforms: compared to the standard sinusoidal drive, truncated trapezoidal drive with optimized rise and dwell times yields higher cooling power and efficiency.

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