Aldulaijan, N., Marsden, J.A., Manson, J.A. et al. (1 more author) (2024) Adaptive Mixed Variable Bayesian Self-Optimisation of Catalytic Reactions. Reaction Chemistry and Engineering, 9 (2). pp. 308-316. ISSN 2058-9883
Abstract
Catalytic reactions play a central role in many industrial processes, owing to their ability to enhance efficiency and sustainability. However, complex interactions between the categorical and continuous variables leads to non-smooth response surfaces, which traditional optimisation methods struggle to navigate. Herein, we report the development and benchmarking of a new Adaptive Latent Bayesian Optimiser (ALaBO) algorithm for mixed variable chemical reactions. ALaBO was found to outperform other open-source Bayesian optimisation toolboxes, when applied to a series of test problems based on simulated kinetic data of catalytic reactions. Furthermore, through integration of ALaBO with a continuous flow reactor, we achieved the rapid self-optimisation of an exemplar Suzuki-Miyaura cross-coupling reaction involving six distinct ligands, identifying a 93% yield within a budget of just 25 experiments.
Metadata
Item Type: | Article |
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Authors/Creators: |
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Copyright, Publisher and Additional Information: | © The Royal Society of Chemistry 2024. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence. |
Dates: |
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Institution: | The University of Leeds |
Academic Units: | The University of Leeds > Faculty of Engineering & Physical Sciences (Leeds) > School of Chemical & Process Engineering (Leeds) |
Funding Information: | Funder Grant number Royal Academy of Engineering RF2122-21-200 |
Depositing User: | Symplectic Publications |
Date Deposited: | 18 Oct 2023 08:43 |
Last Modified: | 22 May 2024 13:36 |
Published Version: | https://pubs.rsc.org/en/content/articlelanding/202... |
Status: | Published |
Publisher: | Royal Society of Chemistry |
Identification Number: | 10.1039/D3RE00476G |
Open Archives Initiative ID (OAI ID): | oai:eprints.whiterose.ac.uk:204313 |
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