Pfeffer P, Hartmann F, Neri I, Schade A, Emmerling M, Kamp M, Gammaitoni L, Höfling S, Worschech L
Technische Physik and Wilhelm Conrad Röntgen Research Center for Complex Material Systems, Physikalisches Institut, Universität Würzburg, Am Hubland, D-97074 Würzburg, Germany.
Nanotechnology. 2016 May 27;27(21):215201. doi: 10.1088/0957-4484/27/21/215201. Epub 2016 Apr 15.
In this paper we demonstrate two realizations of a half adder based on a voltage-rectifying mechanism involving two Coulomb-coupled quantum dots. First, we examine the ranges of operation of the half adder's individual elements, the AND and XOR gates, for a single rectifying device. It allows a switching between the two gates by a control voltage and thus enables a clocked half adder operation. The logic gates are shown to be reliably operative in a broad noise amplitude range with negligible error probabilities. Subsequently, we study the implementation of the half adder in a combined double-device consisting of two individually tunable rectifiers. We show that this double device allows a simultaneous operation of both relevant gates at once. The presented devices draw their power solely from electronic fluctuations and are therefore an advancement in the field of energy efficient and autonomous electronics.
在本文中,我们展示了基于涉及两个库仑耦合量子点的电压整流机制的半加器的两种实现方式。首先,我们研究了单个整流器件构成的半加器的各个元件(与门和异或门)的工作范围。它允许通过控制电压在两个门之间切换,从而实现时钟控制的半加器操作。结果表明,逻辑门在很宽的噪声幅度范围内能可靠工作,错误概率可忽略不计。随后,我们研究了由两个可单独调谐的整流器组成的组合双器件中半加器的实现。我们表明,这种双器件允许两个相关门同时运行。所展示的器件仅从电子涨落中获取能量,因此是节能和自主电子领域的一项进展。