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Spectral properties of a resonator driven by a superconducting single-electron transistor

机译:由超导单电子晶体管驱动的谐振器的光谱特性

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We analyze the spectral properties of a resonator coupled to a superconducting single-electron transistor (SSET) close to the Josephson quasiparticle resonance. Focusing on the regime where the resonator is driven into a limit-cycle state by the SSET, we investigate the behavior of the resonator linewidth and the energy relaxation rate which control the widths of the main features in the resonator spectra. We find that the linewidth becomes very narrow in the limit-cycle regime, where it is dominated by a slow phase-diffusion process, as in a laser. The overall phase-diffusion rate is determined by a combination of direct phase diffusion and the effect of amplitude fluctuations which affect the phase because the resonator frequency is amplitude dependent. For sufficiently strong couplings we find that a regime emerges where the phase diffusion is no longer minimized when the average resonator energy is maximized. Finally we show that the current noise of the SSET provides a way of measuring both the linewidth and energy relaxation rate.
机译:我们分析了耦合到接近约瑟夫森准粒子共振的超导单电子晶体管(SSET)的共振器的光谱特性。着眼于由SSET将谐振器驱动到极限循环状态的状态,我们研究了谐振器线宽的行为和能量弛豫率,它们控制了谐振器频谱中主要特征的宽度。我们发现线宽在极限循环状态下变得非常狭窄,在极限状态下,线宽主要由缓慢的相位扩散过程决定,就像在激光中一样。整体相位扩散率是由直接相位扩散和振幅波动的影响共同决定的,因为谐振器频率取决于振幅,因此会影响相位。对于足够强的耦合,我们发现当平均谐振器能量最大化时,相位扩散不再最小的状态就会出现。最后,我们证明了SSET的电流噪声提供了一种测量线宽和能量弛豫率的方法。

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