论文标题
液氮冷却超导过渡边缘传感器具有超高响应性和GHz操作速度
A liquid nitrogen cooled superconducting transition edge sensor with ultra-high responsivity and GHz operation speeds
论文作者
论文摘要
基于纳米结构的超导薄膜的光电探测器目前是一些最敏感的量子传感器,并且是量子信息,量子计算和放射性媒介物等广泛领域的关键促进技术。但是,他们的广泛使用被需要昂贵的低温恒温器的低操作温度阻止。在这里,我们证明了氮气冷却的超导过渡边缘传感器,该传感器显示了在77K以上操作的任何超导检测器的数量级提高的性能特性,其响应性为9.61x10^4 V/W,噪声均衡功率为15.9 fw/hz-1/2的噪声均衡功率,并加速运行,并加速到GHZ频率。它基于高温超导体BI2SR2CACU2O8的Van der waals异质结构,该结构将其形成具有超小构造的纳米线。为了强调检测器的多功能性,我们证明了其在电信级Sin波导芯片上的制造和操作。我们的检测器显着放松了超导检测器的实际应用需求,并显示了其基于光子学量子应用的巨大潜力。
Photodetectors based on nano-structured superconducting thin films are currently some of the most sensitive quantum sensors and are key enabling technologies in such broad areas as quantum information, quantum computation and radio-astronomy. However, their broader use is held back by the low operation temperatures which require expensive cryostats. Here, we demonstrate a nitrogen cooled superconducting transition edge sensor, which shows orders of magnitude improved performance characteristics of any superconducting detector operated above 77K, with a responsivity of 9.61x10^4 V/W, noise equivalent power of 15.9 fW/Hz-1/2 and operation speeds up to GHz frequencies. It is based on van der Waals heterostructures of the high temperature superconductor Bi2Sr2CaCu2O8, which are shaped into nano-wires with ultra-small form factor. To highlight the versatility of the detector we demonstrate its fabrication and operation on a telecom grade SiN waveguide chip. Our detector significantly relaxes the demands of practical applications of superconducting detectors and displays its huge potential for photonics based quantum applications.