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research article

Quantum Transport in 40-nm MOSFETs a Deep-Cryogenic Temperatures

Yang, Tsung-Yeh
•
Ruffino, Andrea  
•
Michniewicz, John
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July 1, 2020
IEEE Electron Device Letters

In this letter, we characterize the electrical properties of commercial bulk 40-nm MOSFETs at room and deep cryogenic temperatures, with a focus on quantum information processing (QIP) applications. At 50 mK, the devices operate as classical FETs or quantum dot devices when either a high or low drain bias is applied, respectively. The operation in classical regime shows improved transconductance and subthreshold slope with respect to 300 K. In the quantum regime, all measured devices show Coulomb blockade. This is explained by the formation of quantum dots in the channel, for which a model is proposed. The variability in parameters, important for quantum computing scaling, is also quantified. Our results show that bulk 40-nm node MOSFETs can be readily used for the co-integration of cryo-CMOS classical-quantum circuits at deep cryogenic temperatures and that the variability approaches the uniformity requirements to enable shared control.

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Type
research article
DOI
10.1109/LED.2020.2995645
Web of Science ID

WOS:000545436900005

Author(s)
Yang, Tsung-Yeh
Ruffino, Andrea  
Michniewicz, John
Peng, Yatao  
Charbon, Edoardo
Gonzalez-Zalba, Miguel Fernando
Date Issued

2020-07-01

Published in
IEEE Electron Device Letters
Volume

41

Issue

7

Start page

981

End page

984

Subjects

Engineering, Electrical & Electronic

•

Engineering

•

mosfet

•

quantum dot (qd)

•

coulomb blockade

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cryogenic temperature

•

quantum information processing (qip)

•

silicon

•

qubit

•

gate

•

logic

•

cmos

Editorial or Peer reviewed

REVIEWED

Written at

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July 17, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/170204
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