A system design approach toward integrated cryogenic quantum control systems
Mridula Prathapan, Peter Mueller, David Heim, Maria Vittoria Oropallo,, Matthias Braendli, Pier Andrea Francese, Marcel Kossel, Andrea Ruffino, Cezar, Zota, Eunjung Cha, and Thomas Morf

TL;DR
This paper presents a comprehensive system design for cryogenic quantum control electronics, integrating advanced CMOS and InP HEMT components to enable scalable, low-error quantum computing with efficient feedback and readout mechanisms.
Contribution
It introduces a novel integrated cryogenic control system architecture combining CMOS and InP HEMT amplifiers for scalable quantum computing.
Findings
Design of memory-based arbitrary waveform generators
Integration of InP HEMT LNAs with CMOS stages
Achieved low-latency, high-fidelity qubit readout and control
Abstract
In this paper, we provide a system level perspective on the design of control electronics for large scale quantum systems. Quantum computing systems with high-fidelity control and readout, coherent coupling, calibrated gates, and reconfigurable circuits with low error rates are expected to have superior quantum volumes. Cryogenic CMOS plays a crucial role in the realization of scalable quantum computers, by minimizing the feature size, lowering the cost, power consumption, and implementing low latency error correction. Our approach toward achieving scalable feed-back based control systems includes the design of memory based arbitrary waveform generators (AWG's), wide band radio frequency analog to digital converters, integrated amplifier chain, and state discriminators that can be synchronized with gate sequences. Digitally assisted designs, when implemented in an advanced CMOS node…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
