Abstract
Chemists can now construct wires which are just a few atoms in diameter; these wires can be selectively field-effect gated, and wire crossings can act as diodes with programmable resistance. These new capabilities present both opportunities and challenges for constructing nanoscale computing systems. The tiny feature sizes offer a path to economically scale down to atomic dimensions. However, the associated bottom-up synthesis techniques only produce highly regular structures and come with high defect rates and minimal control during assembly. To exploit these technologies, we develop nanowire-based architectures which can bridge between lithographic and atomic-scale feature sizes and tolerate defective and stochastic assembly of regular arrays to deliver high density universal computing devices. Using 10nm pitch nanowires, these nanowire-based programmable architectures offer one to two orders of magnitude greater mapped-logic density than defect-free lithographic FPGAs at 22nm. Categories and Subject Descriptors: B.6.1 [Logic Design]: Design Styles-Logic arrays; B.7.1 [Integrated Circuits]: Types and Design Styles-Advanced technologies. © 2005, ACM. All rights reserved.
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Dehon, A. (2005). Nanowire-Based Programmable Architectures. ACM Journal on Emerging Technologies in Computing Systems, 1(2), 109–162. https://doi.org/10.1145/1084748.1084750
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