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  4. A Fully-Integrated 40-nm 5-6.5 GHz Cryo-CMOS System-on-Chip with I/Q Receiver and Frequency Synthesizer for Scalable Multiplexed Readout of Quantum Dots
 
conference paper

A Fully-Integrated 40-nm 5-6.5 GHz Cryo-CMOS System-on-Chip with I/Q Receiver and Frequency Synthesizer for Scalable Multiplexed Readout of Quantum Dots

Ruffino, Andrea  
•
Peng, Yatao  
•
Yang, Tsung-Yeh
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February 17, 2021
2021 IEEE International Solid- State Circuits Conference (ISSCC)
2021 IEEE International Solid- State Circuits Conference (ISSCC)

Quantum computing holds the promise to solve many of today's intractable problems. A solid-state quantum computer (QC) is generally made of an array of qubits implemented in one of many solid-state technologies and operating at deep-cryogenic temperatures (10-to-20mK). Silicon spin qubits are a promising candidate for scalable QCs, due to their size, long coherence times and potential for co-integration with the required classical control and readout electronics. Recently, semiconductor spin qubits have been demonstrated to operate at ~1K, thus accelerating the achievement of a compact QC [1]. Classical qubit control electronics has also progressed, with the demonstration of fully-integrated control of spin qubits [2] and transmons [3] implemented in a cryo-CMOS technology. While a cryo-CMOS integrated circuit has been co-integrated with quantum dots [4], fully-integrated readout electronics has not yet been addressed in the literature.

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Type
conference paper
DOI
10.1109/ISSCC42613.2021.9365758
Author(s)
Ruffino, Andrea  
Peng, Yatao  
Yang, Tsung-Yeh
Michniewicz, John
Gonzalez-Zalba, Miguel Fernando
Charbon, Edoardo  
Date Issued

2021-02-17

Publisher

IEEE

Published in
2021 IEEE International Solid- State Circuits Conference (ISSCC)
Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
AQUA  
Event nameEvent placeEvent date
2021 IEEE International Solid- State Circuits Conference (ISSCC)

San Francisco, California, USA

February 13-22, 2021

Available on Infoscience
May 9, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/177985
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