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research article

CMOS-based cryogenic control of silicon quantum circuits

Xue, Xiao
•
Patra, Bishnu
•
van Dijk, Jeroen P. G.
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May 13, 2021
Nature

The most promising quantum algorithms require quantum processors that host millions of quantum bits when targeting practical applications(1). A key challenge towards large-scale quantum computation is the interconnect complexity. In current solid-state qubit implementations, an important interconnect bottleneck appears between the quantum chip in a dilution refrigerator and the room-temperature electronics. Advanced lithography supports the fabrication of both control electronics and qubits in silicon using technology compatible with complementary metal oxide semiconductors (CMOS)(2). When the electronics are designed to operate at cryogenic temperatures, they can ultimately be integrated with the qubits on the same die or package, overcoming the 'wiring bottleneck'(3-6). Here we report a cryogenic CMOS control chip operating at 3 kelvin, which outputs tailored microwave bursts to drive silicon quantum bits cooled to 20 millikelvin. We first benchmark the control chip and find an electrical performance consistent with qubit operations of 99.99 per cent fidelity, assuming ideal qubits. Next, we use it to coherently control actual qubits encoded in the spin of single electrons confined in silicon quantum dots(7-9) and find that the cryogenic control chip achieves the same fidelity as commercial instruments at room temperature. Furthermore, we demonstrate the capabilities of the control chip by programming a number of benchmarking protocols, as well as the Deutsch-Josza algorithm(10), on a two-qubit quantum processor. These results open up the way towards a fully integrated, scalable silicon-based quantum computer.

A cryogenic CMOS control chip operating at 3 K is used to demonstrate coherent control and simple algorithms on silicon qubits operating at 20 mK.

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Type
research article
DOI
10.1038/s41586-021-03469-4
Web of Science ID

WOS:000649848600010

Author(s)
Xue, Xiao
•
Patra, Bishnu
•
van Dijk, Jeroen P. G.
•
Samkharadze, Nodar
•
Subramanian, Sushil
•
Corna, Andrea
•
Paquelet Wuetz, Brian
•
Jeon, Charles
•
Sheikh, Farhana
•
Juarez-Hernandez, Esdras
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Date Issued

2021-05-13

Publisher

NATURE RESEARCH

Published in
Nature
Volume

593

Issue

7858

Start page

205

End page

210

Subjects

Multidisciplinary Sciences

•

Science & Technology - Other Topics

•

chip

•

design

Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
AQUA  
Available on Infoscience
June 5, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/178624
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