A Reconfigurable Field-Coupled Nanocomputing Paradigm on Uniform Molecular Monolayers

Yuri Ardesi, G. Beretta, Christian Fabiano, M. Graziano, G. Piccinini
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引用次数: 2

Abstract

The Molecular Field-Coupled Nanocomputing (FCN) is a computing beyond-CMOS paradigm that encodes the information in the charge distribution of molecules and propagates it through local electrostatic coupling. Notwithstanding the incredibly high potentialities of this technology in the field of high-speed and low-power digital electronics, a molecular prototype has not been produced yet. Indeed, this technology requires nanometric layouts, which are challenging to obtain, slowing down the technology assessment. In this work, we propose a paradigm that bypasses the need for nanometric patterning of molecular devices by organizing the uniform Self-Assembled Monolayer (SAM) into molecular blocks that may store information and be activated independently. The activation of blocks configures the SAM to perform in-memory logic computation. This study demonstrates a reconfigurable molecular standard-cell that maps the basic logic gates (routing, majority voters, inverters), enabling complex digital circuit design. With this paradigm, we move the challenges from the SAM nanopatterning to the clocking system technological feasibility, reducing resolution constraints and favoring the eventual realization of a prototype.
均匀分子单层上的可重构场耦合纳米计算范式
分子场耦合纳米计算(FCN)是一种超越cmos的计算范式,它对分子电荷分布中的信息进行编码,并通过局部静电耦合进行传播。尽管该技术在高速低功耗数字电子领域具有令人难以置信的巨大潜力,但分子原型尚未生产出来。事实上,该技术需要纳米级布局,而纳米级布局很难获得,从而降低了技术评估的速度。在这项工作中,我们提出了一种范例,通过将统一的自组装单层(SAM)组织成可以存储信息并独立激活的分子块,从而绕过了分子器件的纳米图图化需求。块的激活将SAM配置为执行内存中的逻辑计算。本研究展示了一个可重构的分子标准单元,它可以映射基本逻辑门(路由,多数选民,逆变器),从而实现复杂的数字电路设计。通过这种模式,我们将挑战从SAM纳米图案转移到时钟系统技术可行性,减少分辨率限制并有利于原型的最终实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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