arXiv · 2605.31185
Fast coherent control of a charge qubit on solid neon with a spin-qubit-compatible resonator
Abstract
Electrons floating in vacuum provide a clean platform for quantum information processing owing to their isolation from material defects. In particular, electrons on solid neon have emerged as a promising qubit platform because of their potentially long coherence times. Here, toward spin-qubit realization, we couple a single electron on solid neon to a magnetic-field-compatible superconducting NbTiN nanowire resonator. We realize a charge qubit and demonstrate microwave readout and coherent control, with Rabi frequencies up to 76 MHz, an order of magnitude larger than in previous studies. Under strong driving, we observe a qubit frequency shift from nonlinear interactions with the intense microwave field. Deterministic electron trapping at an intended position remains challenging due to solid neon surface roughness; we characterize the electron's position from its differential coupling to distinct electrodes. Although not trapped at an intended position, our estimates indicate that spin-qubit demonstrations remain feasible.
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Jun Wang, Yiran Tian, Ivan Grytsenko, Asher Jennings, Beatriz Pérez González, Xianjing Zhou, Hirotaka Terai, Dafei Jin, Monica Benito, Erika Kawakami. 2026-05-29. Fast coherent control of a charge qubit on solid neon with a spin-qubit-compatible resonator. https://arxiv.org/abs/2605.31185
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