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| Funder | Engineering and Physical Sciences Research Council |
|---|---|
| Recipient Organization | Imperial College London |
| Country | United Kingdom |
| Start Date | Sep 30, 2024 |
| End Date | Mar 30, 2028 |
| Duration | 1,277 days |
| Number of Grantees | 1 |
| Roles | Supervisor |
| Data Source | UKRI Gateway to Research |
| Grant ID | 2928244 |
This project will focus on the development of a generalisable automated workflow for organic synthesis, and on exploiting automated high-throughput screening and characterisation to curate and provide the crucial experimental data required for chemical discovery through generative AI to identify novel molecule and materials classes, and for the development of new multi-fidelity machine learning approaches for active learning, Bayesian optimisation, and design of experiments to uncover reaction mechanisms.
Imperial College London
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