DocumentCode
85305
Title
Time and Frequency Domain Analysis of MLGNR Interconnects
Author
Kumar, Vobulapuram Ramesh ; Majumder, Manoj Kumar ; Kukkam, Narasimha Reddy ; Kaushik, Brajesh Kumar
Author_Institution
Dept. of Electron. & Commun. Eng., Indian Inst. of Technol. Roorkee, Roorkee, India
Volume
14
Issue
3
fYear
2015
fDate
May-15
Firstpage
484
Lastpage
492
Abstract
Multilayer graphene nanoribbons (MLGNRs) have potentially provided attractive solutions in an intensely growing researched area of interconnects. However, for MLGNR interconnects, the doping is inevitable since the conductivity of neutral MLGNR is much lower than even Cu. Therefore, a doped MLGNR can potentially exhibits smaller resistance in comparison to Cu wires. This paper analyzes and compares the power, delay, and bandwidth performance of Cu and doped MLGNR using an equivalent single conductor model. For similar dimensions, the overall delay and power dissipation of doped MLGNR is substantially smaller by 86.13% and 43.72%, respectively, in comparison to the Cu interconnects. Moreover, MLGNR demonstrates prominently improved bandwidth and relative stability at global interconnect dimensions. However, a narrow width MLGNR in a realistic scenario exhibits rough edges that significantly reduces the mean free path and, thereby, raises its resistance. Considering these facts, this paper for the first time analyzes and compares the performance of Cu and MLGNR interconnects with different edge roughness conditions.
Keywords
electrical conductivity; electrical resistivity; frequency-domain analysis; graphene; integrated circuit interconnections; nanoribbons; time-domain analysis; C; MLGNR interconnects; bandwidth performance; conductivity; doping; equivalent single conductor model; frequency domain analysis; multilayer graphene nanoribbons; overall delay; power dissipation; resistance; time domain analysis; Bandwidth; Capacitance; Delays; Graphene; Integrated circuit interconnections; Power dissipation; Stability analysis; Equivalent single conductor (ESC) model; Multilayer graphene nanoribbon (MLGNR); Nyquist stability; frequency response; multilayer graphene nanoribbon (MLGNR); power dissipation; propagation delay;
fLanguage
English
Journal_Title
Nanotechnology, IEEE Transactions on
Publisher
ieee
ISSN
1536-125X
Type
jour
DOI
10.1109/TNANO.2015.2408353
Filename
7053903
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