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Does carrier velocity saturation help to enhance f(max) in graphene field-effect transistors?

It has been argued that current saturation in graphene field-effect transistors (GFETs) is needed to get optimal maximum oscillation frequency (f(max)). This paper investigates whether velocity saturation can help to get better current saturation and if that correlates with enhanced f(max). We have...

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Autores principales: Feijoo, Pedro C., Pasadas, Francisco, Bonmann, Marlene, Asad, Muhammad, Yang, Xinxin, Generalov, Andrey, Vorobiev, Andrei, Banszerus, Luca, Stampfer, Christoph, Otto, Martin, Neumaier, Daniel, Stake, Jan, Jiménez, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419022/
https://www.ncbi.nlm.nih.gov/pubmed/36132766
http://dx.doi.org/10.1039/c9na00733d
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author Feijoo, Pedro C.
Pasadas, Francisco
Bonmann, Marlene
Asad, Muhammad
Yang, Xinxin
Generalov, Andrey
Vorobiev, Andrei
Banszerus, Luca
Stampfer, Christoph
Otto, Martin
Neumaier, Daniel
Stake, Jan
Jiménez, David
author_facet Feijoo, Pedro C.
Pasadas, Francisco
Bonmann, Marlene
Asad, Muhammad
Yang, Xinxin
Generalov, Andrey
Vorobiev, Andrei
Banszerus, Luca
Stampfer, Christoph
Otto, Martin
Neumaier, Daniel
Stake, Jan
Jiménez, David
author_sort Feijoo, Pedro C.
collection PubMed
description It has been argued that current saturation in graphene field-effect transistors (GFETs) is needed to get optimal maximum oscillation frequency (f(max)). This paper investigates whether velocity saturation can help to get better current saturation and if that correlates with enhanced f(max). We have fabricated 500 nm GFETs with high extrinsic f(max) (37 GHz), and later simulated with a drift–diffusion model augmented with the relevant factors that influence carrier velocity, namely: short-channel electrostatics, saturation velocity effect, graphene/dielectric interface traps, and self-heating effects. Crucially, the model provides microscopic details of channel parameters such as carrier concentration, drift and saturation velocities, allowing us to correlate the observed macroscopic behavior with the local magnitudes. When biasing the GFET so all carriers in the channel are of the same sign resulting in highly concentrated unipolar channel, we find that the larger the drain bias is, both closer the carrier velocity to its saturation value and the higher the f(max) are. However, the highest f(max) can be achieved at biases where there exists a depletion of carriers near source or drain. In such a situation, the highest f(max) is not found in the velocity saturation regime, but where carrier velocity is far below its saturated value and the contribution of the diffusion mechanism to the current is comparable to the drift mechanism. The position and magnitude of the highest f(max) depend on the carrier concentration and total velocity, which are interdependent and are also affected by the self-heating. Importantly, this effect was found to severely limit radio-frequency performance, reducing the highest f(max) from ∼60 to ∼40 GHz.
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spelling pubmed-94190222022-09-20 Does carrier velocity saturation help to enhance f(max) in graphene field-effect transistors? Feijoo, Pedro C. Pasadas, Francisco Bonmann, Marlene Asad, Muhammad Yang, Xinxin Generalov, Andrey Vorobiev, Andrei Banszerus, Luca Stampfer, Christoph Otto, Martin Neumaier, Daniel Stake, Jan Jiménez, David Nanoscale Adv Chemistry It has been argued that current saturation in graphene field-effect transistors (GFETs) is needed to get optimal maximum oscillation frequency (f(max)). This paper investigates whether velocity saturation can help to get better current saturation and if that correlates with enhanced f(max). We have fabricated 500 nm GFETs with high extrinsic f(max) (37 GHz), and later simulated with a drift–diffusion model augmented with the relevant factors that influence carrier velocity, namely: short-channel electrostatics, saturation velocity effect, graphene/dielectric interface traps, and self-heating effects. Crucially, the model provides microscopic details of channel parameters such as carrier concentration, drift and saturation velocities, allowing us to correlate the observed macroscopic behavior with the local magnitudes. When biasing the GFET so all carriers in the channel are of the same sign resulting in highly concentrated unipolar channel, we find that the larger the drain bias is, both closer the carrier velocity to its saturation value and the higher the f(max) are. However, the highest f(max) can be achieved at biases where there exists a depletion of carriers near source or drain. In such a situation, the highest f(max) is not found in the velocity saturation regime, but where carrier velocity is far below its saturated value and the contribution of the diffusion mechanism to the current is comparable to the drift mechanism. The position and magnitude of the highest f(max) depend on the carrier concentration and total velocity, which are interdependent and are also affected by the self-heating. Importantly, this effect was found to severely limit radio-frequency performance, reducing the highest f(max) from ∼60 to ∼40 GHz. RSC 2020-07-24 /pmc/articles/PMC9419022/ /pubmed/36132766 http://dx.doi.org/10.1039/c9na00733d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Feijoo, Pedro C.
Pasadas, Francisco
Bonmann, Marlene
Asad, Muhammad
Yang, Xinxin
Generalov, Andrey
Vorobiev, Andrei
Banszerus, Luca
Stampfer, Christoph
Otto, Martin
Neumaier, Daniel
Stake, Jan
Jiménez, David
Does carrier velocity saturation help to enhance f(max) in graphene field-effect transistors?
title Does carrier velocity saturation help to enhance f(max) in graphene field-effect transistors?
title_full Does carrier velocity saturation help to enhance f(max) in graphene field-effect transistors?
title_fullStr Does carrier velocity saturation help to enhance f(max) in graphene field-effect transistors?
title_full_unstemmed Does carrier velocity saturation help to enhance f(max) in graphene field-effect transistors?
title_short Does carrier velocity saturation help to enhance f(max) in graphene field-effect transistors?
title_sort does carrier velocity saturation help to enhance f(max) in graphene field-effect transistors?
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419022/
https://www.ncbi.nlm.nih.gov/pubmed/36132766
http://dx.doi.org/10.1039/c9na00733d
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