Contribution to a conference proceedings FZJ-2023-00192

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Qubit Bias using a CMOS DAC at mK Temperatures

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2022
IEEE

2022 29th IEEE International Conference on Electronics, Circuits and Systems (ICECS), ICECS2022, GlasgowGlasgow, United Kingdom, 24 Oct 2022 - 26 Oct 20222022-10-242022-10-26 IEEE 1-4 ()

Abstract: Scaling up a quantum processor to tackle real-world problems requires qubit numbers in the millions. Scalable semiconductor-based architectures have been proposed, many of them relying on integrated control instead of room-temperature electronics. However, it has not yet been shown that this can be achieved. For developing a high-density, low-cost wiring solution, it is highly advantageous for the electronics to be placed at the same temperature as the qubit chip. Therefore, tight integration of the qubit chip with ultra low power complemen-tary metal-oxide-semiconductor (CMOS) electronics presents a promising route. We demonstrate DC biasing qubit electrodes using a custom-designed 65nm CMOS capacitive digital-to-analog converter (DAC) operating on the mixing chamber of a dilution refrigerator below 45 mK. Our chip features a complete proof of principle solution including interface, DAC memory and logic, the capacitive DAC, and sample-and-hold structures to provide voltages for multiple qubit gates. The bias- DAC is combined with the qubit using a silicon interposer chip, enabling flexible routing and tight integration. Voltage stability, noise performance, and temperature are benchmarked using the qubit chip. Our results indicate that qubit bias at cryogenic temperatures with a power consumption of 4 n W /ch is feasible with this approach. They validate the potential of very low power qubit biasing using highly integrated circuits whose connectivity requirements do not increase with the number of qubits.


Contributing Institute(s):
  1. JARA Institut Quanteninformation (PGI-11)
  2. Zentralinstitut für Elektronik (ZEA-2)
Research Program(s):
  1. 5221 - Advanced Solid-State Qubits and Qubit Systems (POF4-522) (POF4-522)
  2. BMBF-13N16149 - QSolid (BMBF-13N16149) (BMBF-13N16149)

Appears in the scientific report 2022
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Institute Collections > PGI > PGI-11
Institute Collections > PGI > PGI-4
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 Record created 2023-01-06, last modified 2025-01-29


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