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From the Cover: Nanowire nanocomputer as a finite-state machine

机译:从封面:Nanowire纳米计算机作为有限状态机

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摘要

Implementation of complex computer circuits assembled from the bottom up and integrated on the nanometer scale has long been a goal of electronics research. It requires a design and fabrication strategy that can address individual nanometer-scale electronic devices, while enabling large-scale assembly of those devices into highly organized, integrated computational circuits. We describe how such a strategy has led to the design, construction, and demonstration of a nanoelectronic finite-state machine. The system was fabricated using a design-oriented approach enabled by a deterministic, bottom–up assembly process that does not require individual nanowire registration. This methodology allowed construction of the nanoelectronic finite-state machine through modular design using a multitile architecture. Each tile/module consists of two interconnected crossbar nanowire arrays, with each cross-point consisting of a programmable nanowire transistor node. The nanoelectronic finite-state machine integrates 180 programmable nanowire transistor nodes in three tiles or six total crossbar arrays, and incorporates both sequential and arithmetic logic, with extensive intertile and intratile communication that exhibits rigorous input/output matching. Our system realizes the complete 2-bit logic flow and clocked control over state registration that are required for a finite-state machine or computer. The programmable multitile circuit was also reprogrammed to a functionally distinct 2-bit full adder with 32-set matched and complete logic output. These steps forward and the ability of our unique design-oriented deterministic methodology to yield more extensive multitile systems suggest that proposed general-purpose nanocomputers can be realized in the near future.
机译:自下而上组装并以纳米级集成的复杂计算机电路的实现一直是电子学研究的目标。它需要一种设计和制造策略,以解决单个纳米级电子设备的问题,同时使这些设备大规模组装成高度组织的集成计算电路。我们将描述这种策略如何导致纳米电子有限状态机的设计,构建和演示。该系统采用面向设计的方法制造,该方法通过确定性的,自底向上的组装过程实现,不需要单独的纳米线配准。这种方法允许通过使用多块结构的模块化设计来构造纳米电子有限状态机。每个图块/模块由两个相互连接的交叉开关纳米线阵列组成,每个交叉点由一个可编程的纳米线晶体管节点组成。纳米电子有限状态机将180个可编程的纳米线晶体管节点集成在三个图块或六个总交叉开关阵列中,并结合了顺序逻辑和算术逻辑,具有广泛的插值和插值通信,表现出严格的输入/输出匹配。我们的系统实现了有限状态机或计算机所需的完整2位逻辑流和状态注册的时钟控制。可编程多块电路也被重新编程为具有32位匹配和完整逻辑输出的功能独特的2位全加法器。这些进步以及我们独特的面向设计的确定性方法能够产生更广泛的多块系统的能力表明,拟议的通用纳米计算机可在不久的将来实现。

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