Burchianti A, Scazza F, Amico A, Valtolina G, Seman J A, Fort C, Zaccanti M, Inguscio M, Roati G
Istituto Nazionale di Ottica del Consiglio Nazionale delle Ricerche (INO-CNR), 50019 Sesto Fiorentino, Italy.
LENS and Dipartimento di Fisica e Astronomia, Università di Firenze, 50019 Sesto Fiorentino, Italy.
Phys Rev Lett. 2018 Jan 12;120(2):025302. doi: 10.1103/PhysRevLett.120.025302.
We study the emergence of dissipation in an atomic Josephson junction between weakly coupled superfluid Fermi gases. We find that vortex-induced phase slippage is the dominant microscopic source of dissipation across the Bose-Einstein condensate-Bardeen-Cooper-Schrieffer crossover. We explore different dynamical regimes by tuning the bias chemical potential between the two superfluid reservoirs. For small excitations, we observe dissipation and phase coherence to coexist, with a resistive current followed by well-defined Josephson oscillations. We link the junction transport properties to the phase-slippage mechanism, finding that vortex nucleation is primarily responsible for the observed trends of conductance and critical current. For large excitations, we observe the irreversible loss of coherence between the two superfluids, and transport cannot be described only within an uncorrelated phase-slip picture. Our findings open new directions for investigating the interplay between dissipative and superfluid transport in strongly correlated Fermi systems, and general concepts in out-of-equilibrium quantum systems.
我们研究了弱耦合超流费米气体之间的原子约瑟夫森结中耗散的出现。我们发现,涡旋诱导的相位滑移是跨越玻色 - 爱因斯坦凝聚 - 巴丁 - 库珀 - 施里弗尔交叉区域的主要微观耗散源。我们通过调节两个超流储库之间的偏置化学势来探索不同的动力学区域。对于小激发,我们观察到耗散和相位相干共存,存在一个电阻电流,随后是明确的约瑟夫森振荡。我们将结的输运性质与相位滑移机制联系起来,发现涡旋成核主要负责观察到的电导和临界电流趋势。对于大激发,我们观察到两个超流体之间相干性的不可逆丧失,并且输运不能仅用不相关的相位滑移图像来描述。我们的发现为研究强关联费米系统中耗散输运与超流输运之间的相互作用以及非平衡量子系统中的一般概念开辟了新方向。