Ion counting and temperature determination of Coulomb-crystallized laser-cooled ions in traps using convolutional neural networks
arXiv:2502.18442 · doi:10.1103/zggq-xcbg
Abstract
Coulomb crystals -- ordered structures of cold ions confined in ion traps -- find applications in a variety of research fields. The number and temperature of the ions forming the Coulomb crystals are two key attributes of interest in many trapped-ion experiments. Here, we present a fast and accurate approach to determining these attributes from fluorescence images of the ions based on convolutional neural networks (CNNs). In this approach, we first generate a large number of images of Coulomb crystals with different ion numbers and temperatures using molecular-dynamics simulations and then train CNN models on these images to classify the desired attributes. The classification performance of several common pretrained CNN models was compared in example tasks. We find that for crystals with ion numbers in the range 100--299 and secular temperatures of 5--15 mK, the best-performing model can discern number variations on the level of one ion with an accuracy of 93% and temperature variations by 1 mK with an accuracy of 92%. Since the trained model can be directly integrated into experiments, in-situ determination of these attributes can be realized in a non-invasive fashion, which has the potential to greatly facilitate the analysis and control of trapped ions in real time.
References in corpus (13)
- Quantum computing with trapped ions
- A trapped single ion inside a Bose-Einstein condensate
- Simplified motional heating rate measurements of trapped ions
- Fluorescence during Doppler cooling of a single trapped atom
- Efficient ground-state cooling of large trapped-ion chains with an EIT tripod scheme
- Frequency Metrology on single trapped ions in the weak binding limit: The 3s1/2-3p3/2 transition in 24-Mg+
- Cold trapped molecular ions and hybrid platforms for ions and neutral particles
- Radial two-dimensional ion crystals in a linear Paul trap
- Laser-cooling-assisted mass spectrometry
- Sub-milliKelvin spatial thermometry of a single Doppler cooled ion in a Paul trap
- Fast thermometry for trapped ions using dark resonances
- Sideband thermometry of ion crystals
- Number-Resolved Detection of Dark Ions in Coulomb Crystals