Silicon spin qubits offer long coherence times, a compact footprint and compatibility with industrial CMOS manufacturing. Here, we investigate spin qubits hosted in quantum dots fabricated in a state-of-the-art 300 mm nanoelectronics foundry and demonstrate substantially enhanced coherence, achieving a Hahn-echo time of T2Hahn=4ms for singlet--triplet oscillations. Employing noise spectroscopy and noise correlation measurements, we identify detuning noise with an amplitude of δεrms=2.2μeV (integrated over 90 s) and observe strong zero-phase correlations between two spatially separated spin qubits. The singlet--triplet basis intrinsically rejects these common-mode fluctuations, yielding a pronounced suppression of dephasing. Our results suggest that exploiting the versatility of silicon quantum dots to adapt the qubit encoding to the microscopic noise landscape represents a promising strategy for advancing scalable quantum information processing.
@article{arxiv.2512.20758,
title = {Long coherence silicon spin qubit fabricated in a 300 mm industrial foundry},
author = {Petar Tomić and Patrick Bütler and Yuze Wu and Bart Raes and Clement Godfrin and Stefan Kubicek and Julien Jussot and Yann Canvel and Yannick Hermans and Yosuke Shimura and Roger Loo and Sofie Beyne and Gulzat Jaliel and Thomas Van Caekenberghe and Vukan Levajac and Danny Wan and Kristiaan De Greve and Wister Wei Huang and Klaus Ensslin and Thomas Ihn},
journal= {arXiv preprint arXiv:2512.20758},
year = {2025}
}