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Rorrer, Nicholas A. (ORCID:0000000191345853)

Publications and source records attributed to Rorrer, Nicholas A. (ORCID:0000000191345853).

Repurposing Post-Consumer Polyethylene to Access Cross-Linked Polyethylene with Reprocessabilty, Recyclability, and Tunable Properties

Polyethylene (PE) is the most widely produced plastic but accumulation and resistance to degradation has significantly contributed to the plastic waste crisis. Upcycling has presented promising solutions to transform PE waste into value-added products. In this study, mixed post-consumer PE was successfully repurposed into reprocessable and chemically recyclable cross-linked polyethylene (XLPE). This process involved converting PE into telechelic oligomers, followed by repolymerization using a hybrid cross-linking system consisting of a dynamic cross-linker 2,4,6-triethoxy-1,3,5-triazine (TETA) and non-dynamic cross-linker tris(6-isocyanatohexyl)isocyanurate (Tri-HDI). In the resulting XLPE, TETA facilitated iterative reprocessing with minimal property degradation across cycles, whereas Tri-HDI helped preserve functional performance throughout service life. Compared to PE, XLPE exhibited enhanced mechanical properties, reduced creep deformation under application-relevant temperatures, and high temperature structural stability. Notably, copolymerizing PE oligomers with commercial macrodiols was employed to create composite XLPEs, enabling tuning material properties. After use, XLPE can be efficiently and selectively depolymerized under mild conditions, even when mixed with commercial insulator cables. This depolymerization allows for the recovery of the constituent building blocks, enabling purification and subsequent repolymerization for reuse. This approach demonstrates the potential of repurposing plastic waste into sustainable materials and fostering the development of a circular economy.

INORGANIC, ORGANIC, PHYSICAL, AND ANALYTICAL CHEMI↗

Topology-Accelerated and Selective Cascade Depolymerization of Architecturally Complex Polyesters

Despite considerable recent advances already made in developing chemically circular polymers (CPs), the current framework predominantly focuses on CPs with linear-chain structures of different monomer types. As polymer properties are determined by not only composition but also topology, manipulating the topology of the single-monomer-based CP systems from linear-chain structures to architecturally complex polymers could potentially modulate the resulting polymer properties without changing the chemical composition, thereby advancing the concept of monomaterial product design. To that end, here, we introduce a chemically circular hyperbranched polyester (HBPE), synthesized by a mixed chain-growth and step-growth polymerization of a rationally designed bicyclic lactone with a pendent hydroxyl group (BiLOH). This HBPE exhibits full chemical recyclability despite its architectural complexity, showing quantitative selectivity for regeneration of BiLOH, via a unique cascade depolymerization mechanism. Moreover, distinct differences in materials properties and performance arising from topological variations between HBPE, hb-PBiLOH, and its linear analogue, l-PBiLOH, have been revealed where generally the branched structure led to more favorable interchain interactions, and topology-amplified optical activity has also been observed for chiral (1S, 4S, 5S)-hb-PBiLOH. More intriguingly, depolymerization of l-PBiLOH proceeds through an unexpected, initial topological transformation to the HBPE polymer, followed by the faster cascade depolymerization pathway adopted by hb-PBiLOH. Overall, these results demonstrate that CP design can go beyond typical linear polymers, and rationally redesigned, architecturally complex polymers for their unique properties may synergistically impart advantages in topology-augmented depolymerization acceleration and selectivity for exclusive monomer regeneration.

depolymerization↗

Converting Poly(ethylene terephthalate) to Rigid Thermosets: Performance and Recycling Considerations

Poly(ethylene terephthalate) (PET) is one of today's most ubiquitous plastics finding predominant uses in textiles and food applications. Due to its prolific implementation, PET already possesses a robust mechanical recycling infrastructure; however, current requirements for mechanical recycling still leads to an underutilization of PET. Thus, to keep carbon in the economy and further encourage decarbonization efforts it is paramount to find other applications for PET. In the present work, PET is converted to thermoset applications, specifically those relevant to fiber reinforced plastics. In one case, bioderived monomers are utilized to convert glycolyzed PET into unsaturated polyesters resins which can possess better thermomechanical performance than their petrochemical counterpart while also emitting less GHG emissions in their manufacture. In the second case, the constituent monomers from PET are converted into epoxies and reacted with either amines or anhydrides to form thermoset networks. When anhydrides are implemented alongside carboxylate-based epoxies, 100% monomer recyclability is obtainable. Meanwhile, when amines are used, performance of the materials can be enhanced at the sacrifice of some recyclability. Overall, this work demonstrates the potential to further incentivize the reclamation of materials through multiple second life applications in pursuance of maintaining carbon in today's material economy.

BIOMASS FUELS,ENVIRONMENTAL SCIENCES↗