Predicting Solid State Material Platforms for Quantum Technologies
arXiv:2203.16203 · doi:10.1038/s41524-022-00888-3
Abstract
Semiconductor materials provide a compelling platform for quantum technologies (QT), and the properties of a vast amount of materials can be found in databases containing information from both experimental and theoretical explorations. However, searching these databases to find promising candidate materials for quantum technology applications is a major challenge. Therefore, we have developed a framework for the automated discovery of semiconductor host platforms for QT using material informatics and machine learning methods, resulting in a dataset consisting of over materials and nearly physics-informed features. Three approaches were devised, named the Ferrenti, extended Ferrenti and the empirical approach, to label data for the supervised machine learning (ML) methods logistic regression, decision trees, random forests and gradient boosting. We find that of the three, the empirical approach relying exclusively on findings from the literature predicted substantially fewer candidates than the other two approaches with a clear distinction between suitable and unsuitable candidates when comparing the two largest eigenvalues in the covariance matrix. In contrast to expectations from the literature and that found for the Ferrenti and extended Ferrenti approaches focusing on band gap and ionic character, the ML methods from the empirical approach highlighted features related to symmetry and crystal structure, including bond length, orientation and radial distribution, as influential when predicting a material as suitable for QT. All three approaches and all four ML methods agreed on a subset of eligible candidates %(to a probability of ) of elemental, binary, and tertiary compounds, and provide a basis for further material explorations towards quantum technology.
23 pages, 18 figures
References in corpus (9)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- The Quantum Internet
- High-sensitivity diamond magnetometer with nanoscale resolution
- A General-Purpose Machine Learning Framework for Predicting Properties of Inorganic Materials
- Free-Space distribution of entanglement and single photons over 144 km
- Coherent control of single spins in silicon carbide at room temperature
- Isolated electron spins in silicon carbide with millisecond-coherence times
- Chip-based photon quantum state sources using nonlinear optics
- All-optical initialization, readout, and coherent preparation of single silicon-vacancy spins in diamond