Cavendish Laboratory , University of Cambridge , J.J. Thomson Avenue , Cambridge , CB3 0HE , United Kingdom.
Faculty of Physics and Mathematics , University of Latvia , Riga LV-1002 , Latvia.
Nano Lett. 2018 Jul 11;18(7):4141-4147. doi: 10.1021/acs.nanolett.8b00874. Epub 2018 Jun 26.
In quantum metrology, semiconductor single-electron pumps are used to generate accurate electric currents with the ultimate goal of implementing the emerging quantum standard of the ampere. Pumps based on electrostatically defined tunable quantum dots (QDs) have thus far shown the most promising performance in combining fast and accurate charge transfer. However, at frequencies exceeding approximately 1 GHz the accuracy typically decreases. Recently, hybrid pumps based on QDs coupled to trap states have led to increased transfer rates due to tighter electrostatic confinement. Here, we operate a hybrid electron pump in silicon obtained by coupling a QD to multiple parasitic states and achieve robust current quantization up to a few gigahertz. We show that the fidelity of the electron capture depends on the sequence in which the parasitic states become available for loading, resulting in distinctive frequency-dependent features in the pumped current.
在量子计量学中,半导体单电子泵被用于产生精确的电流,其最终目标是实现新兴的量子安培标准。基于静电定义的可调谐量子点 (QD) 的泵迄今为止在结合快速和准确的电荷转移方面表现出最有前途的性能。然而,在频率超过约 1GHz 时,精度通常会降低。最近,基于与陷态耦合的 QD 的混合泵由于更强的静电限制导致转移速率增加。在这里,我们通过将 QD 耦合到多个寄生态来在硅中操作混合电子泵,并实现了高达几 GHz 的稳健的电流量子化。我们表明,电子俘获的保真度取决于用于加载的寄生态变得可用的顺序,这导致泵送电流中出现独特的、与频率相关的特征。