Scalable on-chip multiplexing of silicon single and double quantum dots

Fuente: arXiv
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Main Authors: Bohuslavskyi, Heorhii, Ronzani, Alberto, Hätinen, Joel, Rantala, Arto, Shchepetov, Andrey, Koppinen, Panu, Lehtinen, Janne S., Prunnila, Mika
Format: Preprint
Published: 2022
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author Bohuslavskyi, Heorhii
Ronzani, Alberto
Hätinen, Joel
Rantala, Arto
Shchepetov, Andrey
Koppinen, Panu
Lehtinen, Janne S.
Prunnila, Mika
author_facet Bohuslavskyi, Heorhii
Ronzani, Alberto
Hätinen, Joel
Rantala, Arto
Shchepetov, Andrey
Koppinen, Panu
Lehtinen, Janne S.
Prunnila, Mika
contents Owing to the maturity of complementary metal oxide semiconductor (CMOS) microelectronics, qubits realized with spins in silicon quantum dots (QDs) are considered among the most promising technologies for building scalable quantum computers. For this goal, ultra-low-power on-chip cryogenic CMOS (cryo-CMOS) electronics for control, read-out, and interfacing of the qubits is an important milestone. We report on-chip interfacing of tunable electron and hole QDs by a 64-channel cryo-CMOS multiplexer with less-than-detectable static power dissipation. We analyze charge noise and measure state-of-the-art addition energies and gate lever arm parameters in the QDs. We correlate low noise in QDs and sharp turn-on characteristics in cryogenic transistors, both fabricated with the same gate stack. Finally, we demonstrate that our hybrid quantum-CMOS technology provides a route to scalable interfacing of a large number of QD devices, enabling, for example, variability analysis and QD qubit geometry optimization, which are prerequisites for building large-scale silicon-based quantum computers.
format Preprint
id arxiv_https___arxiv_org_abs_2208_12131
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Scalable on-chip multiplexing of silicon single and double quantum dots
Bohuslavskyi, Heorhii
Ronzani, Alberto
Hätinen, Joel
Rantala, Arto
Shchepetov, Andrey
Koppinen, Panu
Lehtinen, Janne S.
Prunnila, Mika
Mesoscale and Nanoscale Physics
Owing to the maturity of complementary metal oxide semiconductor (CMOS) microelectronics, qubits realized with spins in silicon quantum dots (QDs) are considered among the most promising technologies for building scalable quantum computers. For this goal, ultra-low-power on-chip cryogenic CMOS (cryo-CMOS) electronics for control, read-out, and interfacing of the qubits is an important milestone. We report on-chip interfacing of tunable electron and hole QDs by a 64-channel cryo-CMOS multiplexer with less-than-detectable static power dissipation. We analyze charge noise and measure state-of-the-art addition energies and gate lever arm parameters in the QDs. We correlate low noise in QDs and sharp turn-on characteristics in cryogenic transistors, both fabricated with the same gate stack. Finally, we demonstrate that our hybrid quantum-CMOS technology provides a route to scalable interfacing of a large number of QD devices, enabling, for example, variability analysis and QD qubit geometry optimization, which are prerequisites for building large-scale silicon-based quantum computers.
title Scalable on-chip multiplexing of silicon single and double quantum dots
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2208.12131