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  4. Parasitic Capacitance in Nanosheet FETs: Extraction of Different Components and Their Analytical Modeling
 
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Parasitic Capacitance in Nanosheet FETs: Extraction of Different Components and Their Analytical Modeling

Source
IEEE Transactions on Electron Devices
ISSN
00189383
Date Issued
2024-05-01
Author(s)
Singh, Aishwarya
Maheshwari, Om
Mohapatra, Nihar R.  
DOI
10.1109/TED.2024.3382216
Volume
71
Issue
5
Abstract
This work presents an approach to extract and analytically model the components of the parasitic capacitance in the Nanosheet FETs. The model comprehensively accounts for parallel, fringing, and junction capacitance between the gate and the source/drain. The individual parasitic capacitance components are extracted from TCAD simulation by varying the structural and material parameters of the device, which are then used for model validation. The fringing parasitic capacitance components are modeled using the elliptical integral method based on the distribution of the electric field lines. The proposed model accurately incorporates the substantial (∼ 30%) contribution of junction capacitance to the total parasitic capacitance. The model uses only one fitting parameter and is accurate across the device structural variations with only ∼ 1.2% error.
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URI
https://d8.irins.org/handle/IITG2025/28922
Subjects
Compact model | elliptical integral method | junction capacitance | nanosheet FET | parasitic gate capacitance
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