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Jeremy L. Swartz

Researcher at University of Florida

Publications -  6
Citations -  122

Jeremy L. Swartz is an academic researcher from University of Florida. The author has contributed to research in topics: Polymerization & Polymer. The author has an hindex of 3, co-authored 3 publications receiving 56 citations.

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Defining the Macromolecules of Tomorrow through Synergistic Sustainable Polymer Research.

TL;DR: In this paper , a comprehensive, integrated approach to summarize important and impactful contributions to this broad research arena is presented, highlighting signature accomplishments across a broad research portfolio and is organized into four wide-ranging research themes that address the topic in a comprehensive manner: Feedstocks, Polymerization Processes and Techniques, Intended Use, and End of Use.
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Multifunctional Homopolymers: Postpolymerization Modification via Sequential Nucleophilic Aromatic Substitution

TL;DR: In this paper, an acrylamide monomer containing a triazine ring with two electrophilic sites was prepared from TCT and polymerized via reversible addition-fragmentation chain transfer (RAFT) polymerization.
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Modular and rapid access to amphiphilic homopolymers via successive chemoselective post-polymerization modification

TL;DR: A concise and modular preparation of homopolymers with both a hydrophilic and hydrophobic group on each monomer unit is demonstrated, facilitating the systematic investigation of structure–property relationships for this new class of amphiphilic homopolymer.
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Synthesis of Multifunctional Homopolymers through Using Thiazolidine Chemistry and Post‐Polymerization Modification

TL;DR: A strategy to synthesize a multifunctional homopolymer using thiazolidine chemistry is demonstrated, allowing for the synthesis of a polymer with pendent latent nucleophiles via post-polymerization modification.
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A modular platform for the precise assembly of molecular frameworks composed of ion pairs

TL;DR: Calix[4]pyrrole assemblies are highly tunable and modular, as demonstrated in seven examples of 2D layered crystals or 1D ladder polymers characterized by single-crystal X-ray diffraction as discussed by the authors .