标题: | 中观超导结内超导电流特性的微观研究 A microscopic approach to the supercurrent characteristics of mesoscopic superconducting junctions |
作者: | 张智援 Chang, Victor Chih Yuan 朱仲夏 C. S. Chu 电子物理系所 |
关键字: | 中观物理;超导体;临界电流;穿隧效应;量子传输;相位;mesoscopic;SNS junction;Andreev reflection;tunneling;quantum transport;phase |
公开日期: | 1997 |
摘要: | 本论文提出一种用微观方式来研究中观超导结内超导 电流特性的 方法(以下称为微观法)。此方法的特色是能 够仔细分析量子传输的 中间散射过程,而其计算电流的公 式是可以严谨地推导出来的,不像 其它的 Landauer-type 传导方法是由适用于半导体的公式推广而来 。对于 SNS 超导结,微观法和其它的传导法给出相同的结果。但是 , 就对称的 SNSNS 超导结而言,这两类方法得到的超导电 流却 不同。更进一步的分析显示,在两个超导电极之间, 若再有 Andreev 反射,则量子传输就不能用一般的传导 法来处理。所以,中观超导 结里的传输应该是散射的,而 非传导的。 中观超导结这种系统非常适合探讨和超导体能隙函数 的相位有关的新 物理。在本论文中,我们用微观法来计算 SNSNS 超导结的电流—相位 差关系(以下称为电相图)。 不论结构对称与否,中间超导层的相位 φ2 对电相图有特 殊的影响。尤其在不对称的结构里,φ2 更是无法 用直观 的对称想法来选定。为了决定 φ2,我们提议用一种守恒 条件,要求在两个非超导区计算的电流必须相等。结果显 示,φ2 是 两个超导电极的相位差 φ 的多值函数。此性 质对超导结的电相图有 重大的效应。 绝对零温时, SNSNS 电相图 只有唯一的分支,周期是 4π。当中间超导层的长度 L2 不是很长时, 此电相图会显 现出与 Andreev 能阶穿隧有关的特性。而不对称超导结 的 电相图还有另外两种特性。一、截断的特性,尤其当 L2 很长 或不对称的程度较高时更为显着。这种截断的特性影 响着超导结的临 界电流大小。二、在被截断以外的部份, 不对称和对称超导结的电相 图只有几个百分点的差异(在 这里所比较的是非超导区的总长度以及 L2 相同的超导结 )。这种特性和其它参数所对应的灵敏变化呈现明 显的对 比。 当温度高于绝对零度时,上述的截断特性和 Andreev 能阶穿隧的特性 仍然存在。不过,更重要的是,有限温度 的效应导致新而不同的 φ2 值产生。结果,对称超导结的 电相图被修改成有二条分支,而其周期 各为 2π 和 4π。 至于不对称 SNSNS 超导结的电相图则有更加不同 的修改。 该电相图有二条分支,而周期都是 2π。这些结果已经在 不同的极限情况下验证成立。我们也尝试找出这些由温度 所引起的差 异的物理原因。最后,我们预期这些 φ2 的新 奇效应在其它结构的中 观超导结里, 甚至超导超晶格中, 都会显现。 A microscopic approach to the study of the supercurrent characteristics in mesoscopic superconducting junctions (MSJ) has been established in this thesis. In this approach, all contributing physical processes are treated as the scattering of quasiparticles while the current is calculated from a microscopically derived current expression. These processes include Andreev reflections, which correspond to the tunneling of Cooper pairs. An example for the discrepancy between our approach and the transmission approach is found in a double superconductor-normal-metal-superconductor (SNS) junction. These two approaches, however, give the same results in a single SNS junction. Our analysis shows that the additional Andreev reflections occurring within the region between the two superconducting end-electrodes lead to the discrepancy. Thus we conclude that in general MSJ structures, transport is scattering, rather than transport is transmission. The MSJ structures provide a valuable opportunity for the exploration of new physics that are associated with the phases of the gap function of the constituent superconductors. We have studied the current-phase relations (CPR) of both symmetric and asymmetric SNSNS junctions. It is found that the phase of the middle superconductor plays a very special role in shaping the CPR features. The lack of configuration symmetry in asymmetric SNSNS junctions forbid an intuitive choice of values for the phase φ2 of the middle superconductor. To determine φ2, we propose a current-conserving condition that requires the currents evaluated in the two normal regions to be the same. Applying this current-conserving condition to both the symmetric and the asymmetric SNSNS junctions, we find that φ2 is a multi-valued function of φ, the phase difference between the two superconducting end-electrodes. This has significant effects on the CPR of the junctions. At T = 0, the CPR has one branch which has a φ-period of 4π. It exhibits prominent features associated with Andreev-level tunneling when the length L2 of the middle superconductor is not too long. The asymmetric junctions have two additional features. First, the CPR has a cutoff feature, which is more pronounced for longer L2 and for higher degree of junction asymmetry. This cutoff feature affects the critical current of the junctions. Second, in regions other than the cutoff region, the CPR of the asymmetric junctions deviates only within a few percent from the CPR of the symmetric junction which has the same total length in the normal regions, and the same L2. This is in contrast with the greater sensitivity the CPR has to other choices of the junction parameters. At finite T, both the cutoff and the Andreev-level tunneling features remain robust. But, more importantly, the finite-temperature effects lead to additional but distinctly new φ2 values. As a consequence, the CPR for a symmetric junction is modified and has two branches, with φ-periods of 2π and 4π, respectively. However, the CPR for an asymmetric junction is modified differently. It has two branches, each with a φ-period of 2π. The validity of these results has been checked rigorously in various limiting cases. The physical reason for these temperature-induced differences is explored. These interesting effects of φ2 are expected to persist in other MSJ structures and also in superconducting superlattices. |
URI: | http://140.113.39.130/cdrfb3/record/nctu/#NT860429005 http://hdl.handle.net/11536/63012 |
显示于类别: | Thesis |