论文标题
约瑟夫森在有限温度沿BCS-BEC跨界的效果
Josephson effect at finite temperature along the BCS-BEC crossover
论文作者
论文摘要
当可以通过改变粒子间耦合或温度来控制的两个典型的超基因超浮雕时,就会产生的约瑟夫森电流相位特性。尽管耦合依赖性在理论上和实验上都详细解决了经历BCS-BEC交叉的有吸引力的费米气体,但在这种情况下,仍然缺乏对约瑟夫森特征温度依赖性的相应研究。在这里,我们以系统的方式研究了约瑟夫森特征的组合耦合和温度依赖性,以在高度和宽度范围内进行多种障碍,可以实验探索。我们的研究平稳地连接了两个限制案例,即在较低温度下的非重叠复合玻色子,由GROSS-PIATEVSKII方程描述,以及在Ginzburg-Landau方程所描述的临界温度附近的库珀对强烈重叠。通过这种方式,我们能够探索与电流相 - 沿BCS-BEC交叉发展如何随温度和屏障形状的函数演变有关的几种有趣效果。这些效果包括屏障外的相干长度和屏障内部的对穿透长度(这与接近效应有关),以及在消失的小屏障的极限下Landau标准的温度演变。在BCS-BEC跨界的多种耦合中,对临界电流的可用实验数据和我们的理论结果也进行了比较。
The Josephson current-phase characteristics, that arise when a supercurrent flows across two fermionic superfluids separated by a potential barrier, can be controlled by varying either the inter-particle coupling or the temperature. While the coupling dependence has been addressed in detail both theoretically and experimentally for an attractive Fermi gas undergoing the BCS-BEC crossover, a corresponding study of the temperature dependence of the Josephson characteristics is still lacking in this context. Here, we investigate the combined coupling and temperature dependence of the Josephson characteristics in a systematic way for a wide set of barriers, within ranges of height and width that can be experimentally explored. Our study smoothly connects the two limiting cases, of non-overlapping composite bosons at low temperature described by the Gross-Piatevskii equation, and of strongly overlapping Cooper pairs near the critical temperature described by the Ginzburg-Landau equation. In this way, we are able to explore several interesting effects related to how the current-phase characteristics evolve along the BCS-BEC crossover as a function of temperature and of barrier shape. These effects include the coherence length outside the barrier and the pair penetration length inside the barrier (which is related to the proximity effect), as well as the temperature evolution of the Landau criterion in the limit of a vanishingly small barrier. A comparison is also presented between the available experimental data for the critical current and our theoretical results over a wide range of couplings along the BCS-BEC crossover.