Experimental realization of a $\cos(2\varphi)$ transmon qubit
Abstract
Superconducting circuits with embedded symmetries are good candidates to robustly protect quantum information from dominant error channels. The qubit, consisting of an island shunted to ground through a tunneling element that selectively transmits pairs of Cooper pairs, leverages charge-parity symmetry to protect from charge-induced errors. In this experiment, we observe a doublet of states of opposite Cooper-pair parity split by . Operating in a soft-transmon regime, this splitting is two orders of magnitude smaller than in previous implementations, pushing charge-induced losses well beyond the measured coherence times. Despite the low transition frequency, we demonstrate coherent qubit control, single-shot readout, and resolve quantum jumps. Charge protection of the qubit is evidenced by a fold suppression of the island charge matrix element compared to the unprotected plasmon transition, placing dielectric loss limits above . The measured and are instead limited by flux noise in the tunnelling element's loop. This experiment shows that pushing Cooper-pair pairing in the transmon regime sets high limits on charge-induced losses while preserving coherent control and single-shot readout of the low-frequency qubit. We identify flux noise as the dominant remaining limitation, calling for gradiometric designs or novel -tunneling elements.
Keywords
Cite
@article{arxiv.2603.13114,
title = {Experimental realization of a $\cos(2\varphi)$ transmon qubit},
author = {Erwan Roverc'h and Alvise Borgognoni and Marius Villiers and Kyrylo Gerashchenko and W. Clarke Smith and Christopher Wilson and Benoit Douçot and Alexandru Petrescu and Philippe Campagne-Ibarcq and Zaki Leghtas},
journal= {arXiv preprint arXiv:2603.13114},
year = {2026}
}