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Temperature-Aware compact modeling for resistivity in Ultra-Scaled Cu-Graphene hybrid interconnects

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dc.contributor.author Kumar, R.
dc.contributor.author Kumar, S.
dc.contributor.author Guglani, S.
dc.contributor.author Roy, S.
dc.contributor.author Kaushik, B. K.
dc.contributor.author Sharma, R.
dc.contributor.author Achar, R.
dc.date.accessioned 2021-06-29T18:18:17Z
dc.date.available 2021-06-29T18:18:17Z
dc.date.issued 2021-06-29
dc.identifier.uri http://localhost:8080/xmlui/handle/123456789/1911
dc.description.abstract Due to highly-scaled feature sizes of on-chip interconnects at advanced technology nodes, size effects dominate the conductor losses. Also, the surface roughness effectsin Cu interconnects increase due to scaling. Graphene has been recently proposed as a barrier layer in Cu interconnects to mitigate these conductor losses. This paper reports a temperature-dependent compact model for resistivity and resistance of hybrid interconnects, where each conductor consists of a Cu interconnects with a Graphene barrier layer on all sides. For the 7 nm technology node, our analysis shows that hybrid interconnects has 25%, 91%, and 36% lesser resistivity as compared to smooth, rough, and GNR interconnects, respectively. We also present signal integrity analysis for performance benchmarking of hybrid interconnects against conventional Cu interconnects. For 200 Mbps data rate, eye height and eye width for hybrid interconnects improve by 47% and 8x as compared to that in smooth Cu interconnects. en_US
dc.language.iso en_US en_US
dc.subject Copper en_US
dc.subject resistivity en_US
dc.subject graphene en_US
dc.subject surface roughness en_US
dc.subject on-chip interconnects en_US
dc.subject temperature en_US
dc.title Temperature-Aware compact modeling for resistivity in Ultra-Scaled Cu-Graphene hybrid interconnects en_US
dc.type Article en_US


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