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High-speed sub-threshold operation of carbon nanotube interconnects

机译:碳纳米管互连的高速亚阈值操作

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Sub-threshold voltage operated circuits are the future for ultra-low-power applications. These circuits are inherently slow due to the very small sub-threshold currents. Here, the authors propose two approaches for improving the speed of SWCNT bundle interconnects driven by CNTFET-based circuits under sub-threshold conditions. First, the authors modulate the channel length of the CNTFETs that are used in the driver circuits to increase sub-threshold output current. The output current is maximum when the channel length is optimised to 15 nm. Second, the authors design driver circuits made of CNTFET-based inverters and transmission gates for SWCNT bundle interconnects at sub-threshold voltages. The authors consider five different configurations of the driver and load circuits. SPICE simulations show that transmission gates play a vital role in driver circuits by reducing the propagation delay and increasing the switching speed at high frequencies. Finally, the authors perform temperature-dependent analysis of the best cases from the proposed circuits and show that the propagation delay and power dissipated by them increases drastically at increased temperatures up to 500 K.
机译:亚阈值电压操作电路是超低功耗应用的未来。由于非常小的亚阈值电流,这些电路本来就很慢。在这里,作者提出了两种方法来提高亚阈值条件下基于CNTFET的电路驱动的SWCNT束互连的速度。首先,作者调制了驱动电路中使用的CNTFET的沟道长度,以增加亚阈值输出电流。当通道长度优化到15 nm时,输出电流最大。其次,作者设计了由基于CNTFET的反相器和亚门限电压下SWCNT束互连的传输门构成的驱动器电路。作者考虑了驱动器和负载电路的五种不同配置。 SPICE仿真表明,传输门通过减少传播延迟并提高高频下的开关速度,在驱动器电路中起着至关重要的作用。最后,作者对拟议电路中的最佳情况进行了温度相关的分析,结果表明,在温度升高至500 K时,它们的传播延迟和功耗大大增加。

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