English

A superinductor in a deep sub-micron integrated circuit

Quantum Physics 2025-11-17 v4 Mesoscale and Nanoscale Physics Superconductivity

Abstract

Superinductors are circuit elements characterised by an intrinsic impedance in excess of the superconducting resistance quantum (RQ6.45 R_\text{Q}\approx6.45~kΩ\Omega), with applications from metrology and sensing to quantum computing. However, they are typically obtained using exotic materials with high density inductance such as Josephson junctions, superconducting nanowires or twisted two-dimensional materials. Here, we present a superinductor realised within a silicon integrated circuit (IC), exploiting the high kinetic inductance (1\sim 1~nH/\square) of TiN thin films native to the manufacturing process (22-nm FDSOI). By interfacing the superinductor to a silicon quantum dot formed within the same IC, we demonstrate a radio-frequency single-electron transistor (rfSET), the most widely used sensor in semiconductor-based quantum computers. The integrated nature of the rfSET reduces its parasitics which, together with the high impedance, yields a sensitivity improvement of more than two orders of magnitude over the state-of-the-art, combined with a 10,000-fold area reduction. Beyond providing the basis for dense arrays of integrated and high-performance qubit sensors, the realization of high-kinetic-inductance superconducting devices integrated within modern silicon ICs opens many opportunities, including kinetic-inductance detector arrays for astronomy and the study of metamaterials and quantum simulators based on 1D and 2D resonator arrays.

Keywords

Cite

@article{arxiv.2507.13202,
  title  = {A superinductor in a deep sub-micron integrated circuit},
  author = {T. H. Swift and F. Olivieri and G. Aizpurua-Iraola and J. Kirkman and G. M. Noah and M. de Kruijf and F. E. von Horstig and A. Gomez-Saiz and J. J. L. Morton and M. F. Gonzalez-Zalba},
  journal= {arXiv preprint arXiv:2507.13202},
  year   = {2025}
}

Comments

8 pages, 4 figures

R2 v1 2026-07-01T04:06:16.893Z