Ercan İlke, Sütgöl Zeynep Duygu, Özhan Faik Ozan
Department of Microelectronics, Delft University of Technology, 2628 CD Delft, The Netherlands.
Electrical and Electronics Engineering Department, Boğaziçi University, İstanbul 34342, Turkey.
Entropy (Basel). 2021 Mar 30;23(4):406. doi: 10.3390/e23040406.
Brownian circuits are based on a novel computing approach that exploits quantum fluctuations to increase the efficiency of information processing in nanoelectronic paradigms. This emerging architecture is based on Brownian cellular automata, where signals propagate randomly, driven by local transition rules, and can be made to be computationally universal. The design aims to efficiently and reliably perform primitive logic operations in the presence of noise and fluctuations; therefore, a Single Electron Transistor (SET) device is proposed to be the most appropriate technology-base to realize these circuits, as it supports the representation of signals that are token-based and subject to fluctuations due to the underlying tunneling mechanism of electric charge. In this paper, we study the physical limitations on the energy efficiency of the Single-Electron Transistor (SET)-based Brownian circuit elements proposed by Peper et al. using SIMON 2.0 simulations. We also present a novel two-bit sort circuit designed using Brownian circuit primitives, and illustrate how circuit parameters and temperature affect the fundamental energy-efficiency limitations of SET-based realizations. The fundamental lower bounds are obtained using a physical-information-theoretic approach under idealized conditions and are compared against SIMON 2.0 simulations. Our results illustrate the advantages of Brownian circuits and the physical limitations imposed on their SET-realizations.
布朗电路基于一种新颖的计算方法,该方法利用量子涨落来提高纳米电子范式中信息处理的效率。这种新兴架构基于布朗细胞自动机,其中信号由局部转换规则驱动随机传播,并且可以使其具有计算通用性。该设计旨在在存在噪声和涨落的情况下高效且可靠地执行基本逻辑操作;因此,提出单电子晶体管(SET)器件是实现这些电路最合适的技术基础,因为它支持基于令牌的信号表示,并且由于电荷的潜在隧穿机制而受到涨落影响。在本文中,我们使用SIMON 2.0模拟研究了Peper等人提出的基于单电子晶体管(SET)的布朗电路元件能量效率的物理限制。我们还展示了一种使用布朗电路原语设计的新型两位排序电路,并说明了电路参数和温度如何影响基于SET实现的基本能量效率限制。在理想化条件下使用物理信息论方法获得基本下限,并与SIMON 2.0模拟进行比较。我们的结果说明了布朗电路的优势以及对其基于SET实现所施加的物理限制。