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Design and Performance Modeling for Single-Walled Carbon Nanotubes as Local, Semiglobal, and Global Interconnects in Gigascale Integrated Systems

机译:千兆集成系统中作为局部,半全局和全局互连的单壁碳纳米管的设计和性能建模

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摘要

Based on physical models, distributed circuit models are presented for single-walled carbon nanotubes (SWCNs) and SWCN bundles that are valid for all voltages and lengths. These models can be used for circuit simulations and compact modeling. It is demonstrated that by customizing SWCN interconnects at the local, semiglobal, and global levels, several major challenges facing gigascale integrated systems can potentially be addressed. For local interconnects, monolayer or multilayer SWCN interconnects can offer up to 50% reduction in capacitance and power dissipation with up to 20% improvement in latency if they are short enough (<20 mum). For semiglobal interconnects, either latency or power dissipation can be substantially improved if bundles of SWCNs are used. The improvements increase as the cross-sectional dimensions scale down. For global interconnects, bandwidth density can be improved by 40% if there is at least one metallic SWCN per 3-nm2 cross-sectional area
机译:基于物理模型,提出了适用于所有电压和长度的单壁碳纳米管(SWCN)和SWCN束的分布式电路模型。这些模型可用于电路仿真和紧凑建模。事实证明,通过在本地,半全局和全局级别上定制SWCN互连,可以潜在地解决千兆集成系统面临的几个主要挑战。对于本地互连,如果单层或多层SWCN互连足够短(<20毫米),则它们可以减少多达50%的电容和功耗,并可以将延迟最多提高20%。对于半全局互连,如果使用SWCN捆绑,则可以显着改善延迟或功耗。随着横截面尺寸的缩小,改进程度增加。对于全局互连,如果每3 nm2的横截面面积至少有一个金属SWCN,则带宽密度可以提高40%

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