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A Simple and Accurate Modeling Method of Channel Thermal Noise Using BSIM4 Noise Models

Authors
Myeong, IlhoKim, JuhyunKo, HyungwooSong, IckhyunKim, YongseokShin, Hyungcheol
Issue Date
Dec-2020
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Keywords
CMOS; compact modeling; CMOS radio frequency (RF); noise figure; power spectral density; radio frequency; thermal noise
Citation
IEEE TRANSACTIONS ON COMPUTER-AIDED DESIGN OF INTEGRATED CIRCUITS AND SYSTEMS, v.39, no.12, pp.4351 - 4358
Indexed
SCIE
SCOPUS
Journal Title
IEEE TRANSACTIONS ON COMPUTER-AIDED DESIGN OF INTEGRATED CIRCUITS AND SYSTEMS
Volume
39
Number
12
Start Page
4351
End Page
4358
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/187325
DOI
10.1109/TCAD.2020.2974339
ISSN
0278-0070
Abstract
This article presents a method for extracting a channel thermal noise (Sid) using analytical equations and measured noise parameters. Among the four noise parameters considered (R-n, G(opt), B-opt, and NFmin), the equations of R-n and NFmin were used to extract S-id, since the S-id extracted from G(opt) and B-opt was affected more by measurement variations. NTNOI, the noise enhancement factor of the charge-based thermal model of a Berkeley short-channel IGFET model 4 (BSIM4), was modeled as a gate-bias-dependent function to reproduce S-id extracted from the measured noise parameters. Regarding the accuracy of the proposed model, while the error rate was found to vary slightly depending on the device dimensions (finger number), the new model showed only 4% error for r(n), compared to the default model's error of 41% obtained with NTNOI fixed at 1. In addition, the accuracy of G(opt), B-opt, and NFmin is substantially higher than that of the default model. Finally, the modeling technique using the holistic model, another BSIM4 thermal noise model, was briefly discussed.
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COLLEGE OF ENGINEERING (SCHOOL OF ELECTRONIC ENGINEERING)
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