Faculty of Physics and Mathematics, University of Latvia, LV-1002 Riga, Latvia.
Rep Prog Phys. 2015 Oct;78(10):103901. doi: 10.1088/0034-4885/78/10/103901. Epub 2015 Sep 22.
Precise manipulation of individual charge carriers in nanoelectronic circuits underpins practical applications of their most basic quantum property--the universality and invariance of the elementary charge. A charge pump generates a net current from periodic external modulation of parameters controlling a nanostructure connected to source and drain leads; in the regime of quantized pumping the current varies in steps of [Formula: see text] as function of control parameters, where [Formula: see text] is the electron charge and f is the frequency of modulation. In recent years, robust and accurate quantized charge pumps have been developed based on semiconductor quantum dots with tunable tunnel barriers. These devices allow modulation of charge exchange rates between the dot and the leads over many orders of magnitude and enable trapping of a precise number of electrons far away from equilibrium with the leads. The corresponding non-adiabatic pumping protocols focus on understanding of separate parts of the pumping cycle associated with charge loading, capture and release. In this report we review realizations, models and metrology applications of quantized charge pumps based on tunable-barrier quantum dots.
在纳米电子电路中精确操纵单个电荷载流子是其最基本量子特性——基本电荷的通用性和不变性——实际应用的基础。电荷泵通过周期性地调制连接到源极和漏极的纳米结构的控制参数来产生净电流;在量子泵送的范围内,电流作为控制参数的函数以 [Formula: see text] 的步长变化,其中 [Formula: see text] 是电子电荷,f 是调制频率。近年来,基于具有可调隧道势垒的半导体量子点,已经开发出了稳健且精确的量子化电荷泵。这些器件允许在许多数量级上调制点和引线之间的电荷交换速率,并实现了远离与引线平衡的精确数量电子的俘获。相应的非绝热泵送方案侧重于理解与电荷加载、捕获和释放相关的泵送周期的各个部分。在本报告中,我们回顾了基于可调势垒量子点的量子化电荷泵的实现、模型和计量学应用。