Semifluxons in ferromagnetic Josephson junctions
Semifluxons in ferromagnetic Josephson junctions
批准号:
163475902
负责人:
Dr. Edward Goldobin
金额:
$0.0万
依托单位:
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
2010
资助国家:
德国
项目状态:
已结题
起止时间:
2009-12-31 至 2013-12-31
中文摘要
在O-π Josephson结中,只携带一半磁通量量子(半通量子)的漩涡可能会自发出现。由于其新颖的基础物理特性和在超导电子学中的潜在应用,这种涡旋的物理特性引起了人们的极大兴趣。利用超导体-绝缘体-铁磁-超导体(SIFS)技术,可以制备具有低阻尼(当使用约瑟夫森结作为有源元件时需要)和几乎任意形状的结和O- π不连续的O- π约瑟夫森结。然而,现有技术存在缺点:结π部分的最大超电流密度jc π很低(40 A/cm²或更低),导致涡流尺寸()通常超过60µm。因此,包含几个半通量子排列的结构几乎不可能实现。在这个项目中,我们专注于(a)铁磁O- π Josephson结技术的进一步发展和(b)这种结中半通量子的实验研究。该技术的目标是大幅增加π态的jc π(理想情况下至少增加一个数量级),同时仍然保持结的正常状态电阻Rn高,从而降低阻尼。这将使分数旋涡(和器件)更小,适合在经典或量子状态下运行的电路。这一目标将通过以下两条途径实现。首先,现有的(S|I|F|S)约瑟夫森结技术将被改进,以包括具有低阻尼的清洁铁磁体。其次,将现有的超导体-铁磁绝缘体-超导体(S|FIlS)约瑟夫森结技术(例如FI=FeSi)在化学计量学和fl层厚度方面进行优化。在高铁磁体浓度下,从S b| FI b| S到S b| F b| S极限的交叉将被研究。实验将在300 mK至6 K的温度范围内进行,其中分数涡可以被认为是经典的非线性对象。减小的涡旋尺寸将使尚未探索的多涡旋系统的研究成为可能,例如两个或三个涡旋分子,甚至是ID涡旋晶体。分数旋涡之间的相互作用,例如特征频率的相互翻转或分裂,以及与整数通量子的相互作用将被研究。因此,该项目将推动铁磁0- π约瑟夫森结技术的发展,该技术在自偏置经典电路和量子电路等许多其他应用中也很有用。该项目将提高对分数涡物理的理解,并可能提出新的应用。
英文摘要
In a O-π Josephson junction, vortices carrying only a half of the magnetic flux quantum (semifluxons) may appear spontaneously. The physics of such vortices has attracted a lot of interest both in view of their novel fundamental physics and in view of potential applications in superconducting electronics. Using superconductor-insulator-ferromagnet-superconductor (SIFS) technology O- π Josephson junctions with low damping (required when using Josephson junctions as active elements) and of almost arbitrary shape of both the junction and the O- π discontinuity can be fabricated. However, the existing technology has drawbacks: the maximum supercurrent density jc π in the π parts of the junctions is low (40 A/cm² or less), leading to a vortex size ( ) often exceeding 60 µm. Consequently, structures containing arrangements of several semifluxons are almost impossible to realize.Within this project we focus on (a) the further development of the ferromagnetic O- π Josephson junction technology and (b) the experimental investigation of semifluxons in such junctions.The technological aim is to substantially increase jc π in the π state (ideally by at least one order of magnitude), still keeping the junction normal state resistance Rn high and thus damping low. This will make fractional vortices (and devices) much smaller and suitable for circuits operating in either the classical or quantum regime. This aim will be persued by the following two routes. First, the existing (S|I|F|S) Josephson junction technology will be modified to include a clean ferromagnet with low damping. Second, the existing Superconductor-Ferromagnetic lnsulator-Superconductor (S|FIlS) Josephson junction technology (e.g., FI=FeSi) will be optimized in terms of stoichiometry and the thickness of the Fl-layer. The crossover from S|FI|S to S|F|S limit at high concentration of the ferromagnet will be investigated.Using these structures experiments will be performed in the temperature range between 300 mK and 6 K where the fractional vortices can be considered as classical nonlinear objects. The reduced vortex size will enable investigation of not yet explored multi-vortex systems such as two- or three-vortex molecules and even ID vortex crystals. The interaction of fractional vortices with each other, e.g., mutual flipping or splitting of eigenfrequencies, as well as interaction with integer fluxons will be studied.As a result, this project will push forward the ferromagnetic 0- π Josephson junction technology, which is also useful for many other applications such as self-biased classical and quantum circuits. The project will improve the understanding of the fractional vortex physics and may suggest new applications.
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