首页> 外文期刊>Journal of Computational Electronics >Thermally aware performance analysis of single-walled carbon nanotube bundle as VLSI interconnects
【24h】

Thermally aware performance analysis of single-walled carbon nanotube bundle as VLSI interconnects

机译:VLSI互连时单壁碳纳米管束的热敏性能分析

获取原文
获取原文并翻译 | 示例

摘要

A comparative performance analysis in terms of delay, power dissipation, power delay product (PDP), and crosstalk noise between SWCNT bundle interconnects with resistance estimated using conventionally (temperature independent model), and thermally aware model is investigated. The results are also compared with those of currently used copper interconnects at 22 nm technology node. It is observed that, with rise in temperature from 300 to 500 K, SWCNT bundles have a lower delay than that of copper interconnect at different lengths from 100 to whereas reverse is true for power dissipation. The SPICE simulation results further reveal that for temperature variations ranging from 300 to 500 K, compared to conventional metal (copper) conductors, crosstalk noise voltage levels (positive peaks) in capacitively coupled SWCNT bundle, at the far end of victim line, are significantly low. Moreover, a relative average improvement in delay, power, and PDP using a thermally aware model in comparison with a temperature independent model is about 22.44, 7.59 and 31.96 %, respectively, with length variations from 100 to , whereas for varied tube diameter is about 16.6, 5.6 and 19.72 %, respectively. The average relative improvement in the time duration reduction of victim output, for varied tube diameters, is about 21.7 % by using a thermally-aware model instead of a temperature-independent model of an SWCNT bundle resistance.
机译:研究了使用常规电阻(温度独立模型)和热感知模型估算的SWCNT束互连之间的延迟,功耗,功率延迟乘积(PDP)和串扰噪声方面的比较性能分析。还将结果与当前在22 nm技术节点上使用的铜互连的结果进行比较。可以看出,随着温度从300 K上升到500 K,SWCNT束的延迟要比铜互连的延迟低,从100到200 K的长度不同,而功率耗散则相反。 SPICE仿真结果进一步表明,与300到500 K的温度变化相比,与传统的金属(铜)导体相比,受害线远端的电容耦合SWCNT束中的串扰噪声电压水平(正峰值)显着低。此外,与温度独立模型相比,使用热感知模型的时延,功率和PDP的相对平均改善分别为大约22.44%,7.59和31.96%,长度变化范围为100至,而对于变化的管径则为分别为16.6%,5.6%和19.72%。通过使用热敏模型代替SWCNT束电阻的温度独立模型,对于变化的管径,受害者输出持续时间减少的平均相对改善约为21.7%。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号