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"Like Recycles Like": Selective Ring-Closing Depolymerization of Poly(L-Lactic Acid) to L-Lactide.
Linnea Cederholm1, Jakob Wohlert1, Peter Olsén1
1Wallenberg Wood Science Center, WWSC, Department of Fibre and Polymer Technology, KTH Royal Institute of Technology, Teknikringen 56-58, 100 44, Stockholm, Sweden.
This study demonstrates efficient chemical recycling of poly(L-lactic acid) to L-lactide by lowering the monomer's ceiling temperature using specific solvents. This breakthrough enables high-yield, selective polymer recycling and repolymerization, closing the material loop.
Area of Science:
- Polymer Chemistry
- Sustainable Materials
- Chemical Engineering
Background:
- Chemical recycling of poly(L-lactic acid) (PLA) to L-lactide is challenging due to low selectivity and side reactions like epimerization.
- The high ceiling temperature (Tc) of L-lactide necessitates harsh conditions or multi-step processes for effective PLA recycling.
Purpose of the Study:
- To overcome limitations in PLA chemical recycling by decreasing the ceiling temperature of L-lactide.
- To develop a more efficient and selective method for converting high-molecular-weight PLA back to its cyclic monomer.
Main Methods:
- Investigated the effect of solvent interactions on the monomer-polymer equilibrium to lower L-lactide's ceiling temperature.
- Analyzed the relationship between solvent Hildebrand solubility parameter and observed ceiling temperature, identifying a "like recycles like" correlation.
- Utilized strong monomer-solubilizing solvents like dimethyl formamide and gamma-valerolactone to facilitate recycling.
Main Results:
- Achieved chemical recycling of high-molecular-weight poly(L-lactic acid) directly to L-lactide within 1-4 hours at 140°C.
- Demonstrated high conversion rates (>95%) and excellent selectivity (98-99%) for L-lactide.
- Successfully isolated and repolymerized the recycled L-lactide with precise control over molecular weight and dispersity.
Conclusions:
- Solvent selection is crucial for reducing the ceiling temperature and enabling efficient, selective PLA chemical recycling.
- This method provides a viable pathway for closing the polymer loop, promoting sustainable plastic management.
- The ability to repolymerize recycled L-lactide with high fidelity supports circular economy principles for polylactic acid.
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