Physikalisch-Technische Bundesanstalt, Bundesallee 100, 38116 Braunschweig, Germany.
Phys Rev Lett. 2014 Jun 6;112(22):226803. doi: 10.1103/PhysRevLett.112.226803.
The future redefinition of the international system of units in terms of natural constants requires a robust, high-precision quantum standard for the electrical base unit ampere. However, the reliability of any single-electron current source generating a nominally quantized output current I=ef by delivering single electrons with charge e at a frequency f is eventually limited by the stochastic nature of the underlying quantum mechanical tunneling process. We experimentally explore a path to overcome this fundamental limitation by serially connecting clocked single-electron emitters with multiple in situ single-electron detectors. Correlation analysis of the detector signatures during current generation reveals erroneous pumping events and enables us to determine the deviation of the output current from the nominal quantized value ef. This demonstrates the concept of a self-referenced single-electron source for electrical quantum metrology.
未来以自然常数重新定义国际单位制,需要一个稳健、高精度的量子标准来定义电流单位安培。然而,任何通过输送电荷量为 e 的单个电子,以频率 f 产生名义上量子化输出电流 I=ef 的单电子电流源的可靠性,最终都会受到基础量子力学隧穿过程的随机性质的限制。我们通过将计时单电子发射器与多个原位单电子探测器串联连接,实验性地探索了克服这一基本限制的途径。在电流产生过程中对探测器特征进行相关分析,可以揭示错误的泵送事件,并使我们能够确定输出电流与标称量子化值 ef 的偏差。这证明了用于电学量子计量的自参考单电子源的概念。