collaborators

7 papers

cond-mat.mes-hall2025

Deep-Cryogenic Modeling of 22-nm FDSOI MOSFETs based on BSIM-IMG

Debargha Dutta, Kerim Ture, Fabio Olivieri +2

We present a modeling approach based on the BSIM-IMG compact model to capture the deep-cryogenic behavior of MOSFET devices in a 22-nm FDSOI technology. The modeling flow is based…

quant-ph2025

A superinductor in a deep sub-micron integrated circuit

T. H. Swift, F. Olivieri, G. Aizpurua-Iraola +7

Superinductors are circuit elements characterised by an intrinsic impedance in excess of the superconducting resistance quantum (k), with applications f…

cond-mat.other2025

Characterization of heat transfer in 3D CMOS structures using Sideband Scanning Thermal Wave Microscopy

Valentin Fonck, Mohammadali Razeghi, Jean Spièce +5

Efficient thermal management is critical for cryogenic CMOS circuits, where local heating can compromise device performance and qubit coherence. Understanding heat flow at the nano…

quant-ph2025

Spin Readout in a 22 nm Node Integrated Circuit

Isobel C. Clarke, Virginia Ciriano-Tejel, David J. Ibberson +7

Constructing a quantum computer capable of broad and important applications is likely to require millions of addressable physical qubits, posing the challenge of large-scale integr…

cond-mat.mes-hall2025

Large-scale characterization of Single-Hole Transistors in 22-nm FDSOI CMOS Technology

Thomas H. Swift, Alberto Gomez-Saiz, Virginia N. Ciriano-Tejel +5

State-of-the-art quantum processors have recently grown to reach 100s of physical qubits. As the number of qubits continues to grow, new challenges associated with scaling arise, s…

quant-ph2025

An Integrated Deep-Cryogenic Temperature Sensor in CMOS Technology for Quantum Computing Applications

Fabio Olivieri, Grayson M. Noah, Thomas Swift +3

On-chip thermometry at deep-cryogenic temperatures is vital in quantum computing applications to accurately quantify the effect of increased temperature on qubit performance. In th…