Automated self-optimisation of multi-step reaction and separation processes using machine learning
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Artur M. Schweidtmann | A. John Blacker | Alexei A. Lapkin | Carlos González Niño | Adam D. Clayton | Graeme Clemens | Jamie A. Manson | Connor J. Taylor | Carlos González Niño | Thomas W. Chamberlain | Nikil Kapur | Richard A. Bourne | A. Lapkin | A. Clayton | R. Bourne | N. Kapur | A. J. Blacker | T. Chamberlain | C. Taylor | Graeme Clemens | A. Blacker
[1] Geoffrey R Akien,et al. Online quantitative mass spectrometry for the rapid adaptive optimisation of automated flow reactors , 2016 .
[2] Martyn Poliakoff,et al. The Effect of Self-Optimisation Targets on the Methylation of Alcohols Using Dimethyl Carbonate in Supercritical CO2 , 2012, Journal of Flow Chemistry.
[3] Martyn Poliakoff,et al. Adaptive Process Optimization for Continuous Methylation of Alcohols in Supercritical Carbon Dioxide , 2011 .
[4] Riccardo Porta,et al. Flow Chemistry: Recent Developments in the Synthesis of Pharmaceutical Products , 2016 .
[5] Martin D Burke,et al. The Molecular Industrial Revolution: Automated Synthesis of Small Molecules. , 2018, Angewandte Chemie.
[6] Klavs F. Jensen,et al. Photoredox Iridium–Nickel Dual-Catalyzed Decarboxylative Arylation Cross-Coupling: From Batch to Continuous Flow via Self-Optimizing Segmented Flow Reactor , 2018 .
[7] Michael T. M. Emmerich,et al. Single- and multiobjective evolutionary optimization assisted by Gaussian random field metamodels , 2006, IEEE Transactions on Evolutionary Computation.
[8] Aparna Gupta,et al. Decision Sciences : Theory and Practice , 2016 .
[9] Charlotte Truchet,et al. An Autonomous Self-Optimizing Flow Reactor for the Synthesis of Natural Product Carpanone. , 2018, The Journal of organic chemistry.
[10] Timothy M. Braden,et al. The Evolving State of Continuous Processing in Pharmaceutical API Manufacturing: A Survey of Pharmaceutical Companies and Contract Manufacturing Organizations , 2018 .
[11] Michael W. George,et al. Real-Time Feedback Control Using Online Attenuated Total Reflection Fourier Transform Infrared (ATR FT-IR) Spectroscopy for Continuous Flow Optimization and Process Knowledge , 2013, Applied Spectroscopy.
[12] Klavs F Jensen,et al. An integrated microreactor system for self-optimization of a Heck reaction: from micro- to mesoscale flow systems. , 2010, Angewandte Chemie.
[13] S. Haeberlein,et al. AZD3293: Pharmacokinetic and Pharmacodynamic Effects in Healthy Subjects and Patients with Alzheimer's Disease. , 2016, Journal of Alzheimer's disease : JAD.
[14] Artur M. Schweidtmann,et al. Machine learning meets continuous flow chemistry: Automated optimization towards the Pareto front of multiple objectives , 2018, Chemical Engineering Journal.
[15] A. Rahman,et al. A Facile Solvent Free Claisen-Schmidt Reaction: Synthesis of α,α′-bis-(Substituted-benzylidene)cycloalkanones and α,α′-bis-(Substituted-alkylidene)cycloalkanones , 2012, Molecules.
[16] Joshua D. Knowles,et al. ParEGO: a hybrid algorithm with on-line landscape approximation for expensive multiobjective optimization problems , 2006, IEEE Transactions on Evolutionary Computation.
[17] K. Jensen,et al. High-performance miniature CSTR for biphasic C–C bond-forming reactions , 2018 .
[18] R. Vassar,et al. Targeting the β secretase BACE1 for Alzheimer's disease therapy , 2014, The Lancet Neurology.
[19] Robert L. Woodward,et al. Self-optimisation of the final stage in the synthesis of EGFR kinase inhibitor AZD9291 using an automated flow reactor , 2016 .
[20] Nikil Kapur,et al. Simple and Versatile Laboratory Scale CSTR for Multiphasic Continuous-Flow Chemistry and Long Residence Times , 2017 .
[21] Leroy Cronin,et al. Towards dial-a-molecule by integrating continuous flow, analytics and self-optimisation. , 2016, Chemical Society reviews.
[22] Alán Aspuru-Guzik,et al. Autonomous Molecular Design: Then and Now. , 2019, ACS applied materials & interfaces.
[23] A. deMello,et al. Intelligent routes to the controlled synthesis of nanoparticles. , 2007, Lab on a chip.
[24] Artur M. Schweidtmann,et al. Efficient multiobjective optimization employing Gaussian processes, spectral sampling and a genetic algorithm , 2018, Journal of Global Optimization.
[25] Jason D. Williams,et al. Laboratory of the future: a modular flow platform with multiple integrated PAT tools for multistep reactions , 2019, Reaction Chemistry & Engineering.
[26] Klavs F. Jensen,et al. Suzuki–Miyaura cross-coupling optimization enabled by automated feedback , 2016, Reaction chemistry & engineering.
[27] Marcus Baumann,et al. The synthesis of active pharmaceutical ingredients (APIs) using continuous flow chemistry , 2015, Beilstein journal of organic chemistry.
[28] Kalyanmoy Deb,et al. A fast and elitist multiobjective genetic algorithm: NSGA-II , 2002, IEEE Trans. Evol. Comput..
[29] Klavs F. Jensen,et al. Membrane-Based, Liquid–Liquid Separator with Integrated Pressure Control , 2013 .
[30] Artur M. Schweidtmann,et al. A Multiobjective Optimization Including Results of Life Cycle Assessment in Developing Biorenewables-Based Processes. , 2017, ChemSusChem.
[31] Charlotte Truchet,et al. Optimizing the Heck–Matsuda Reaction in Flow with a Constraint-Adapted Direct Search Algorithm , 2016 .
[32] Claudio Battilocchio,et al. A Novel Internet-Based Reaction Monitoring, Control and Autonomous Self-Optimization Platform for Chemical Synthesis , 2015 .
[33] Alexei Lapkin,et al. Self-optimisation and model-based design of experiments for developing a C–H activation flow process , 2017, Beilstein journal of organic chemistry.
[34] Christopher A. Hone,et al. Development of a Continuous-Flow Sonogashira Cross-Coupling Protocol using Propyne Gas under Process Intensified Conditions , 2017 .
[35] S. Y. Wong,et al. On-demand continuous-flow production of pharmaceuticals in a compact, reconfigurable system , 2016, Science.
[36] Magnus Rueping,et al. Online monitoring and analysis for autonomous continuous flow self-optimizing reactor systems , 2016 .
[37] C. E. Berkoff,et al. Chemical process optimization by computer — a self-directed chemical synthesis system , 1978 .
[38] Alexandr Zubov,et al. Closed-Loop Multitarget Optimization for Discovery of New Emulsion Polymerization Recipes , 2015, Organic process research & development.
[39] Martyn Poliakoff,et al. Self-optimizing continuous reactions in supercritical carbon dioxide. , 2011, Angewandte Chemie.
[40] Geoffrey R Akien,et al. Enhanced process development using automated continuous reactors by self-optimisation algorithms and statistical empirical modelling , 2018, Tetrahedron.
[41] Artur M. Schweidtmann,et al. Machine learning and molecular descriptors enable rational solvent selection in asymmetric catalysis , 2019, Chemical science.