28 GHz Wireless Channel Characterization for a Quantum Computer Cryostat at 4 Kelvin

Conference Paper (2026)
Author(s)

Ama Bandara (Universitat Politécnica de Catalunya)

Viviana Centritto Arrojo (Universitat Politécnica de Catalunya)

H. Deng (TU Delft - QCD/Babaie Lab)

M. Babaie (TU Delft - Electrical Engineering, Mathematics and Computer Science, TU Delft - QCD/Babaie Lab)

F. Sebastiano (TU Delft - Electrical Engineering, Mathematics and Computer Science, TU Delft - QCD/Sebastiano Lab)

Edoardo Charbon (École Polytechnique Fédérale de Lausanne)

Evgenii Vinogradov (Universitat Politécnica de Catalunya)

Eduard Alarcon (Universitat Politécnica de Catalunya)

Sergi Abadal (Universitat Politécnica de Catalunya)

Research Group
QCD/Babaie Lab
DOI related publication
https://doi.org/10.23919/EuCAP68105.2026.11612733 Final published version
More Info
expand_more
Publication Year
2026
Language
English
Research Group
QCD/Babaie Lab
Publisher
IEEE
ISBN (print)
979-8-3315-6881-8
ISBN (electronic)
978-88-31299-12-1
Event
2026 20th European Conference on Antennas and Propagation (EuCAP) (2026-04-19 - 2026-04-24), Dublin, Ireland
Downloads counter
13
Reuse Rights

Other than for strictly personal use, it is not permitted to download, forward or distribute the text or part of it, without the consent of the author(s) and/or copyright holder(s), unless the work is under an open content license such as Creative Commons.

Abstract

The scalability of quantum computing systems is constrained by the wiring complexity and thermal load introduced by dense wiring for control, readout and synchronization at cryogenic temperatures. To address this challenge, we explore the feasibility of wireless communication within a cryostat for a multi-core quantum computer, focusing on wireless channel characterization at cryogenic temperatures. We propose to place on-chip differential dipole antennas within the cryostat, designed to operate at 28 GHz in temperatures as low as 4 K. We model the antennas inside a realistic cryostat and, using full-wave electromagnetic simulations, we analyze impedance matching, spatial field distribution, and energy reverberation due to metallic structures. The wireless channel is characterized through measured channel impulse response (CIR) across multiple receiver antenna positions. The results demonstrate potential for reliable shortrange communication with high Signal-to-Noise Ratio (SNR) and limited sensitivity to positional variation, at the cost of nonnegligible delay spread, due to significant multipath effects.

Files

– Personal use only – Dutch Copyright Act (Article 25fa)
warning

File under embargo until 11-02-2027