论文标题

高温约瑟夫森二极管

High-temperature Josephson diode

论文作者

Ghosh, Sanat, Patil, Vilas, Basu, Amit, Kuldeep, Dutta, Achintya, Jangade, Digambar A., Kulkarni, Ruta, Thamizhavel, A., Steiner, Jacob F., von Oppen, Felix, Deshmukh, Mandar M.

论文摘要

对称性在确定材料的各种特性中起关键作用。半导体P-N结二极管体现了工程偏斜的电子响应,是当代电子电路的核心。二极管中的非转录电荷转运是掺杂引起的反转对称性的破坏。除了某些超导系统中的反转对称性外,时间逆转的破坏还导致类似的设备 - 超导二极管。在超导二极管效应(SDE)的开创性首次演示之后,已经报道了大量显示相似效应的新系统。 SDE奠定了实现超低耗散电路的基础,而约瑟夫森现象基于现象的二极管效应(JDE)可以实现受保护的Qubits。但是,到目前为止,SDE和JDE报道的是低温($ \ sim $ 4 K或更低),并阻碍了他们对技术应用的适应性。在这里,我们证明了使用人工约瑟夫森(Josephson)交界处的约瑟夫森二极管(Josephson)二极管,该二极管使用Bi $ _2 $ _2 $ sr $ _2 $ _2 $ cacu $ _2 $ _2 $ o $ $ _ {8+δ} $(BSCCO)的人工约瑟夫森连接(AJJ)。非转录反应在开关电流及其分布的大小中表现为不对称性,并且出现在所有扭曲角度。不对称诱导并可以调节,并具有垂直于连接的非常小的磁场。我们报告20 K时的记录不对称性为60%。我们在基于涡旋的情况下解释了我们的结果。我们的结果为在液氮温度下实现超导量子电路提供了途径。

Symmetry plays a critical role in determining various properties of a material. Semiconducting p-n junction diode exemplifies the engineered skew electronic response and is at the heart of contemporary electronic circuits. The non-reciprocal charge transport in a diode arises from doping-induced breaking of inversion symmetry. Breaking of time-reversal, in addition to inversion symmetry in some superconducting systems, leads to an analogous device - the superconducting diode. Following the pioneering first demonstration of the superconducting diode effect (SDE), a plethora of new systems showing similar effects have been reported. SDE lays the foundation for realizing ultra-low dissipative circuits, while Josephson phenomena-based diode effect (JDE) can enable realization of protected qubits. However, SDE and JDE reported thus far are at low temperatures ($\sim$ 4 K or lower) and impede their adaptation to technological applications. Here we demonstrate a Josephson diode working up to 77 K using an artificial Josephson junction (AJJ) of twisted layers of Bi$_2$Sr$_2$CaCu$_2$O$_{8+δ}$ (BSCCO). The non-reciprocal response manifests as an asymmetry in the magnitude of switching currents and their distributions and appears for all twist angles. The asymmetry is induced by and tunable with a very small magnetic field applied perpendicular to the junction. We report a record asymmetry of 60 % at 20 K. We explain our results within a vortex-based scenario. Our results provide a path toward realizing superconducting quantum circuits at liquid nitrogen temperature.

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