Novel digital impedance bridges for the realization of the farad from graphene quantum standards

M. Marzano, Y. Pimsut, M. Kruskopf, M. Kraus, M. Ortolano, S. Bauer, R. Behr, L. Callegaro
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引用次数: 1

Abstract

In the International System of Units, a realization of the impedance units is the quantum Hall effect, a macroscopic quantum phenomenon that produces quantized resistance values. Established experiments employ individual GaAs devices [1], but research is ongoing on novel materials such as graphene, which allows the realization of the units with relaxed experimental conditions. Furthermore, novel digital impedance bridges allow the implementation of simple traceability chains. In the framework of the European EMPIR project 18SIB07 GIQS (Graphene Impedance Quantum Standards), an affordable and easy-to-operate impedance standard combining novel digital impedance bridges and graphene quantum standards has been developed. An onsite comparison of an electronic and a Josephson impedance bridges developed at INRIM (Istituto Nazionale di Ricerca Metrologica, Italy) and PTB (Physikalisch-Technische Bundesanstalt, Germany), respectively, were organized for their mutual validation and to assess their performance in the realization of the farad.Measurements of temperature-controlled impedance standards and of a graphene quantized Hall resistance standard in the AC regime were performed with both INRIM’s and PTB’s bridges. The result of the comparison and the last progresses of the GIQS project are here presented.
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用于实现石墨烯量子标准的新型数字阻抗桥
在国际单位制中,阻抗单位的实现是量子霍尔效应,这是一种产生量子化电阻值的宏观量子现象。已建立的实验使用单个GaAs器件[1],但对石墨烯等新型材料的研究正在进行中,这使得可以在宽松的实验条件下实现单元。此外,新型数字阻抗桥允许实现简单的可追溯链。在欧洲EMPIR项目18SIB07 GIQS(石墨烯阻抗量子标准)的框架下,开发了一种结合新型数字阻抗桥和石墨烯量子标准的价格合理且易于操作的阻抗标准。对INRIM(意大利国家计量研究所)和PTB(德国物理技术联邦研究所)分别开发的电子和约瑟夫森阻抗桥进行了现场比较,以相互验证并评估它们在实现法拉德中的性能。使用INRIM和PTB的电桥进行了温控阻抗标准和石墨烯量子化霍尔电阻标准在交流状态下的测量。本文介绍了比较结果和GIQS项目的最新进展。
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