Abstract
Tunable scattering resonances are crucial for controlling atomic and molecular systems. However, their use has so far been limited to ultracold temperatures. These conditions remain hard to achieve for most hybrid trapped ion-atom systems—a prospective platform for quantum technologies and fundamental research. Here, we measure inelastic collision probabilities for Sr+ + Rb and use them to calibrate a comprehensive theoretical model of ion-atom collisions. Our theoretical results, compared with experimental observations, confirm that quantum interference effects persist to the multiple-partial-wave regime, leading to the pronounced state and mass dependence of the collision rates. Using our model, we go beyond interference and identify a rich spectrum of Feshbach resonances at moderate magnetic fields with the Rb atom in its lower (f = 1) hyperfine state, which persist at temperatures as high as 1 millikelvin. Future observation of these predicted resonances should allow precise control of the short-range dynamics in Sr+ + Rb collisions under unprecedentedly warm conditions.
Original language | English |
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Article number | eadr8256 |
Journal | Science Advances |
Volume | 11 |
Issue number | 6 |
DOIs | |
Publication status | Published - 5 Feb 2025 |
Funding
We gratefully acknowledge the Israeli Science Foundation (grant no. 1385/19), the European Union (ERC, QuantMol, 101042989), and the National Science Center, Poland (grant no. 2020/38/E/ST2/00564) for the financial support and Poland’s high-performance computing infrastructure PLGrid (HPC Centers: ACK Cyfronet AGH) for providing computer facilities and support (computational grant no. PLG/2023/016115).
All Science Journal Classification (ASJC) codes
- General