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A New Three-Dimensional Capacitor Model for Accurate Simulation of Parasitic Capacitances in Nanoscale MOSFETs

机译:用于精确模拟纳米级MOSFET寄生电容的新型三维电容器模型

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摘要

A new 3-D gate capacitor model is developed to accurately calculate the parasitic capacitances of nanoscale CMOS devices. The dependences on gate length and width, gate electrode and dielectric thicknesses, gate-to-contact spacing, and contact dimension and geometry are fully incorporated in this model. The accuracy is certified by an excellent match with the 3-D interconnection simulation results for three structures with strip, square, and circular contacts. The features of being free from fitting parameters and proven accuracy over various geometries make this model useful for nanoscale MOSFET parasitic capacitance simulation and analysis. Furthermore, the developed capacitor model in the form of multidimensional integral can easily be deployed in general circuit simulators. This model predicts that the parasitic capacitance C of dominates around 25% of the intrinsic gate capacitance (C gint) in 80-nm MOSFETs and that the near nonscalability with gate length brings the weighting factor C of/C gint above 30%/40%/60% in 65-/45-/32-nm devices. It actually exceeds the limitation defined by the most updated ITRS and reveals itself as a show-stopper in high-speed and high-frequency circuit design.
机译:开发了一种新的3-D栅极电容器模型,以精确计算纳米级CMOS器件的寄生电容。在此模型中完全纳入了对栅极长度和宽度,栅极电极和介电层厚度,栅极至触点间距以及触点尺寸和几何形状的依赖性。精度与三个带状,方形和圆形触点结构的3-D互连仿真结果完美匹配,证明了这一点。无需拟合参数,并且在各种几何尺寸上均经过验证的精度使该模型可用于纳米级MOSFET寄生电容仿真和分析。此外,所开发的多维积分形式的电容器模型可以轻松地部署在通用电路模拟器中。该模型预测,在80 nm MOSFET中,寄生电容C占本征栅极电容(C gint)的25%左右,并且随着栅极长度的接近不可缩放性,加权系数C / Cint的权重C超过30%/ 40%在65- / 45- / 32-nm器件中为/ 60%。它实际上超出了最新ITRS所定义的限制,并在高速和高频电路设计中显示出自己是制胜法宝。

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