We report a human-in-the-loop implementation of the multi-objective experimental design via a Bayesian optimization platform (EDBO+) towards the optimization of butylpyridinium bromide synthesis under continuous flow conditions. The algorithm simultaneously optimized reaction yield and production rate (or space-time yield) and generated a well defined Pareto front. The versatility of EDBO+ was demonstrated by expanding the reaction space mid-campaign by increasing the upper temperature limit. Incorporation of continuous flow techniques enabled improved control over reaction parameters compared to common batch chemistry processes, while providing a route towards future automated syntheses and improved scalability. To that end, we applied the open-source Python module, nmrglue, for semi-automated nuclear magnetic resonance (NMR) spectroscopy analysis, and compared the acquired outputs against those obtained through manual processing methods from spectra collected on both low-field (60 MHz) and high-field (400 MHz) NMR spectrometers. The EDBO+ based model was retrained with these four different datasets and the resulting Pareto front predictions provided insight into the effect of data analysis on model predictions. Finally, quaternization of poly(4-vinylpyridine) with bromobutane illustrated the extension of continuous flow chemistry to synthesize functional materials.
Continuous flow synthesis of pyridinium salts accelerated by multi-objective Bayesian optimization with active learning.
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作者:Dunlap John H, Ethier Jeffrey G, Putnam-Neeb Amelia A, Iyer Sanjay, Luo Shao-Xiong Lennon, Feng Haosheng, Garrido Torres Jose Antonio, Doyle Abigail G, Swager Timothy M, Vaia Richard A, Mirau Peter, Crouse Christopher A, Baldwin Luke A
| 期刊: | Chemical Science | 影响因子: | 7.400 |
| 时间: | 2023 | 起止号: | 2023 Jul 12; 14(30):8061-8069 |
| doi: | 10.1039/d3sc01303k | ||
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