Scalable synthesis of sequence-defined, unimolecular macromolecules by Flow-IEG

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Abstract

We report a semiautomated synthesis of sequence and architecturally defined, unimolecular macromolecules through a marriage of multistep flow synthesis and iterative exponential growth (Flow-IEG). The Flow-IEG system performs three reactions and an in-line purification in a total residence time of under 10 min, effectively doubling the molecular weight of an oligomeric species in an uninterrupted reaction sequence. Further iterations using the Flow-IEG system enable an exponential increase in molecular weight. Incorporating a variety of monomer structures and branching units provides control over polymer sequence and architecture. The synthesis of a uniform macromolecule with a molecular weight of 4,023 g/mol is demonstrated. The user-friendly nature, scalability, and modularity of Flow-IEG provide a general strategy for the automated synthesis of sequence-defined, unimolecular macromolecules. Flow-IEG is thus an enabling tool for theory validation, structure-property studies, and advanced applications in biotechnology and materials science.

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Leibfarth, F. A., Johnson, J. A., & Jamison, T. F. (2015). Scalable synthesis of sequence-defined, unimolecular macromolecules by Flow-IEG. Proceedings of the National Academy of Sciences of the United States of America, 112(34), 10617–10622. https://doi.org/10.1073/pnas.1508599112

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