We report fast charge state readout of a double quantum dot in a CMOS split-gate silicon nanowire transistor via the large dispersive interaction with microwave photons in a lumped-element resonator formed by hybrid integration with a superconducting inductor. We achieve a coupling rate g0/(2π)=204±2 MHz by exploiting the large interdot gate lever arm of an asymmetric split-gate device, α=0.72, and by inductively coupling to the resonator to increase its impedance, Zr=560Ω. In the dispersive regime, the large coupling strength at the double quantum dot hybridisation point produces a frequency shift comparable to the resonator linewidth, the optimal setting for maximum state visibility. We exploit this regime to demonstrate rapid dispersive readout of the charge degree of freedom, with a SNR of 3.3 in 50 ns. In the resonant regime, the fast charge decoherence rate precludes reaching the strong coupling regime, but we show a clear route to spin-photon circuit quantum electrodynamics using hybrid CMOS systems.
@article{arxiv.2004.00334,
title = {Large dispersive interaction between a CMOS double quantum dot and microwave photons},
author = {David J. Ibberson and Theodor Lundberg and James A. Haigh and Louis Hutin and Benoit Bertrand and Sylvain Barraud and Chang-Min Lee and Nadia A. Stelmashenko and Giovanni A. Oakes and Laurence Cochrane and Jason W. A. Robinson and Maud Vinet and M. Fernando Gonzalez-Zalba and Lisa A. Ibberson},
journal= {arXiv preprint arXiv:2004.00334},
year = {2021}
}