Exploratory polymer synthesis Summary yearly report, 1 Feb. 1969 - 31 Jan. 1970
Charge transfer processes in synthesis of polymers
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Charge transfer processes in synthesis of polymers
Syntheses and reactions of pyridine type monomers
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Heterocyclic Schiff base type monomer prepared by reaction carbon compounds with amino compounds
High residue polymer synthesis research at high temperatures
Synthesis of heat resistant azine polymers
Synthesis and evaluation of monomers for synthesis of heat resistant polymers - polymer chemistry
Polymerization of heat resistant aromatic amines - organic chemistry
Heat-resistant azine polymer synthesis by melt and solution method
Synthesis of polymers with high residues at high temperatures
Synthesis of polyimidazopyrrolones, using previous macromolecular synthesis of ladder segments of aromatic-heterocyclic polymers
Model polymer synthesis for use in char forming heat shields
Proposal Objectives: 1. Utilize depolymerization/fractionation techniques to recover highly processable and reactive feedstocks for polymer synthesis from lignin. 2. Synthesize lignin‐derived non‐isocyanate polyurethane, epoxy, and polyamide using non‐ toxic, biobased route designed for chemical recycling. Characterize resulting materials. 3. Design a high‐yielding chemical recycling process for as‐synthesized materials yielding usable building blocks for many generations of polymer synthesis. 4. Optimize chemical recycling of PET waste for the synthesis of lignin‐based polymers. Compare properties to commercial materials. 5. Optimize reaction conditions and recycling steps to facilitate enhanced sustainability of the synthetic steps and final properties of materials. 6. Complete a lifecycle assessment of lignin utilization and chemical recycling to compare their environmental performance to that of materials produced from virgin material. Identify hot spots and benefits using the chemical recycling process.
Frontal ring-opening metathesis polymerization (FROMP) is a promising energy-efficient approach to fabricate polymeric materials. Recent advances have demonstrated FROMP for diverse applications, including additive manufacturing, composites, and foams. However, the characteristic properties of the front are currently controlled primarily by varying the resin composition or the environmental conditions. In this work we present an approach to control FROMP of dicyclopentadiene (DCPD) using photochemical methods. A photobase generator is used to inhibit FROMP of DCPD with UV light while a photosensitizer and co-initiator are used to accelerate FROMP with blue light, enabling orthogonal active photocontrol of front velocity. In addition, photoinhibition-enabled lithographic patterning of frontal polymerizations is demonstrated. Frontal polymerizations are spatially controlled, redirected, and even split into diverging fronts. This work establishes a foundation for advanced control of frontal polymerizations, enabling innovation in traditional and additive manufacturing, as well as emerging processes like morphogenic manufacturing.
Synthesis of pyrrone polymers by reactions of dianhydride and diacetoamido diamines or with tetramine
Oxidation resistant elastomeric polymer synthesis studies of hydroxamic acid and isocyanate
Direct synthesis of iminobenzylidene polymers by polymerization of selected monomers
Silazane reaction chemistry for polymer synthesis useful for high temperature applications