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  4. Cryo-CMOS Electronic Control for Scalable Quantum Computing
 
conference paper

Cryo-CMOS Electronic Control for Scalable Quantum Computing

Sebastiano, Fabio
•
Homulle, Harald
•
Patra, Bishnu
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2017
DAC '17 Proceedings of the 54th Annual Design Automation Conference 2017
DAC '17 Proceedings of the 54th Annual Design Automation Conference 2017

Quantum computers1 could revolutionize computing in a profound way due to the massive speedup they promise. A quantum computer comprises a cryogenic quantum processor and a classical electronic controller. When scaling up the cryogenic quantum processor to at least a few thousands, and possibly millions, of qubits required for any practical quantum algorithm, cryogenic CMOS (cryo-CMOS) electronics is required to allow feasible and compact interconnections between the controller and the quantum processor. Cryo-CMOS leverages the CMOS fabrication infrastructure while exploiting the continuous improvement of performance and miniaturization guaranteed by Moore's law, in order to enable the fabrication of a cost-effective practical quantum computer. However, designing cryo-CMOS integrated circuits requires a new set of CMOS device models, their embedding in design and verification tools, and the possibility to co-simulate the cryo-CMOS/quantum-processor architecture for full-system optimization. In this paper, we address these challenges by focusing on their impact on the design of complex cryo-CMOS systems.

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Type
conference paper
DOI
10.1145/3061639.3072948
Author(s)
Sebastiano, Fabio
Homulle, Harald
Patra, Bishnu
Incandela, Rosario
van Dijk, Jeroen
Song, Lin
Babaie, Masoud
Vladimirescu, Andrei
Charbon, Edoardo
Date Issued

2017

Published in
DAC '17 Proceedings of the 54th Annual Design Automation Conference 2017
Start page

1

End page

6

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
AQUA  
Event nameEvent placeEvent date
DAC '17 Proceedings of the 54th Annual Design Automation Conference 2017

Austin, TX, USA

June 18 - 22, 2017

Available on Infoscience
August 13, 2018
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/147735
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