CryoCMOS RF multiplexer for superconducting qubit control, readout and flux biasing at millikelvin temperatures with picowatt power consumption

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Main Authors: Fallik, Liam, Balamurali, Sriram, Caglar, Alican, Acharya, Rohith, Van Damme, Jacques, Ivanov, Tsvetan, Massar, Shana, Asanovski, Ruben, Vadiraj, A. M., Mongillo, Massimo, Craninckx, Jan, Grill, Alexander, Wan, Danny, Potočnik, Anton, De Greve, Kristiaan
Format: Preprint
Published: 2026
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author Fallik, Liam
Balamurali, Sriram
Caglar, Alican
Acharya, Rohith
Van Damme, Jacques
Ivanov, Tsvetan
Massar, Shana
Asanovski, Ruben
Vadiraj, A. M.
Mongillo, Massimo
Craninckx, Jan
Grill, Alexander
Wan, Danny
Potočnik, Anton
De Greve, Kristiaan
author_facet Fallik, Liam
Balamurali, Sriram
Caglar, Alican
Acharya, Rohith
Van Damme, Jacques
Ivanov, Tsvetan
Massar, Shana
Asanovski, Ruben
Vadiraj, A. M.
Mongillo, Massimo
Craninckx, Jan
Grill, Alexander
Wan, Danny
Potočnik, Anton
De Greve, Kristiaan
contents Large-scale cryogenic quantum systems are constrained by an input-output bottleneck between room-temperature electronics and millikelvin stages, particularly in superconducting qubit platforms. This bottleneck is most acute for output lines, where bulky and expensive microwave components limit scalability. A promising approach for scalable characterization and testing is to perform signal multiplexing directly at the qubit plane. We demonstrate a cryogenic CMOS (cryoCMOS) RF multiplexer operating at 10 millikelvin with record-low static power consumption of 200 pW. The device provides < 2 dB insertion loss and > 30 dB isolation across DC-8 GHz. Direct connection to transmon qubits marginally affects coherence times in the range of 100 microseconds, enabling multiplexing of readout, flux and, in principle, XY drive lines. This work introduces cryoCMOS multiplexers as valuable tools for scalable, high-throughput cryogenic characterization and testing, and advances co-integrated quantum-classical control for future large-scale quantum processors.
format Preprint
id arxiv_https___arxiv_org_abs_2603_16608
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle CryoCMOS RF multiplexer for superconducting qubit control, readout and flux biasing at millikelvin temperatures with picowatt power consumption
Fallik, Liam
Balamurali, Sriram
Caglar, Alican
Acharya, Rohith
Van Damme, Jacques
Ivanov, Tsvetan
Massar, Shana
Asanovski, Ruben
Vadiraj, A. M.
Mongillo, Massimo
Craninckx, Jan
Grill, Alexander
Wan, Danny
Potočnik, Anton
De Greve, Kristiaan
Quantum Physics
Large-scale cryogenic quantum systems are constrained by an input-output bottleneck between room-temperature electronics and millikelvin stages, particularly in superconducting qubit platforms. This bottleneck is most acute for output lines, where bulky and expensive microwave components limit scalability. A promising approach for scalable characterization and testing is to perform signal multiplexing directly at the qubit plane. We demonstrate a cryogenic CMOS (cryoCMOS) RF multiplexer operating at 10 millikelvin with record-low static power consumption of 200 pW. The device provides < 2 dB insertion loss and > 30 dB isolation across DC-8 GHz. Direct connection to transmon qubits marginally affects coherence times in the range of 100 microseconds, enabling multiplexing of readout, flux and, in principle, XY drive lines. This work introduces cryoCMOS multiplexers as valuable tools for scalable, high-throughput cryogenic characterization and testing, and advances co-integrated quantum-classical control for future large-scale quantum processors.
title CryoCMOS RF multiplexer for superconducting qubit control, readout and flux biasing at millikelvin temperatures with picowatt power consumption
topic Quantum Physics
url https://arxiv.org/abs/2603.16608