Projects per year
Abstract
Depolymerization is potentially a highly advantageous method of recycling plastic waste which could move the world closer towards a truly circular polymer economy. However, depolymerization remains challenging for many polymers with all-carbon backbones. Fundamental understanding and consideration of both the kinetics and thermodynamics are essential in order to develop effective new depolymerization systems that could overcome this problem, as the feasibility of monomer generation can be drastically altered by tuning the reaction conditions. This perspective explores the underlying thermodynamics and kinetics governing radical depolymerization of addition polymers by revisiting pioneering work started in the mid-20th century and demonstrates its connection to exciting recent advances which report depolymerization reaching near-quantitative monomer regeneration at much lower temperatures than seen previously. Recent catalytic approaches to monomer regeneration are also explored, highlighting that this nascent chemistry could potentially revolutionize depolymerization-based polymer recycling in the future.
Original language | English |
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Pages (from-to) | 832-853 |
Number of pages | 22 |
Journal | Chemical Science |
Volume | 15 |
Issue number | 3 |
DOIs | |
Publication status | Published - 21 Jan 2024 |
Projects
- 2 Finished
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Bespoke nanomaterials for understanding nano-bio interactions under flow
Davis, T. (Primary Chief Investigator (PCI)), Truong Phuoc, N. (Chief Investigator (CI)), Kent, S. (Chief Investigator (CI)) & Anastasaki, A. (Partner Investigator (PI))
1/01/20 → 23/11/23
Project: Research
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Scalable synthesis of smart nanoworms with tailored properties
Truong Phuoc, N. (Primary Chief Investigator (PCI))
21/01/18 → 23/11/23
Project: Research