DocumentCode
1401949
Title
Signal Transmission Analysis of Multilayer Graphene Nano-Ribbon (MLGNR) Interconnects
Author
Cui, Jiang-Peng ; Zhao, Wen-Sheng ; Yin, Wen-Yan ; Hu, Jun
Author_Institution
Zhejiang Provincial Key Lab. for Sensing Technol., Zhejiang Univ., Hangzhou, China
Volume
54
Issue
1
fYear
2012
Firstpage
126
Lastpage
132
Abstract
Signal transmission characteristics of some multilayer graphene nano-ribbon (MLGNR) interconnects are studied in this paper, with an equivalent single-conductor (ESC) model implemented for the analysis of their transient responses. In this model, both capacitive and inductive couplings between adjacent GNR layers are treated appropriately. According to the derived transfer function using the fourth-order approximation, the output voltage waveforms are predicted for both 14- and 22-nm technology nodes. In particular, the effects of Fermi level of MLGNR on the time delay of the transmitted rectangular pulse are examined and compared. Based on the decoupled partially differential equations (PDEs) for the common and differential modes of voltage wave propagation in the edge-coupled MLGNR interconnects, their output voltage responses are also predicted for different technology nodes, which are useful for the evaluation of on-chip signal integrity or EMC and EMI issues of MLGNR-built transmission lines for the future ICs.
Keywords
crosstalk; differential equations; graphene; interconnections; nanoelectronics; nanoribbons; Fermi level; capacitive couplings; derived transfer function; equivalent single conductor model; fourth order approximation; inductive couplings; multilayer graphene nanoribbon interconnects; output voltage waveforms; partially differential equations; signal transmission analysis; transient responses; transmitted rectangular pulse; voltage wave propagation; Capacitance; Copper; Delay effects; Inductance; Integrated circuit interconnections; Integrated circuit modeling; Resistance; Crosstalk; equivalent single-conductor (ESC) model; graphene nano-ribbon (GNR); inductive and capacitive couplings; interconnect; multilayer GNR (MLGNR) transmission lines; time delay;
fLanguage
English
Journal_Title
Electromagnetic Compatibility, IEEE Transactions on
Publisher
ieee
ISSN
0018-9375
Type
jour
DOI
10.1109/TEMC.2011.2172947
Filename
6107575
Link To Document