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Very excited to share our recent article in JACS where we showed that we could capture mechanoradicals formed during polymer degradation and use them to grow polymers back to high MWs or prime them for depolymerization! pubs.acs.org/doi/10.1021/...
We have an open PhD position! The project involves enantioselective C-H functionalization with transition-metal catalysis +/- photocatalysis. Please share with relevant candidates or apply here: efzu.fa.em2.oraclecloud.com/hcmUI/Candid... Deadline: July 6 Link to our recent work in comments.
7mo
May 18, 2025
Plastics pervade every aspect of modern life, yet effective mechanical recycling remains a major challenge. This is, in part, because of the mechanical forces that are involved in reprocessing, which break polymer chains and generate mechanoradicals, leading to a reduction in molecular weight and diminished material properties. This work introduces a robust strategy to capture and redirect these reactive intermediates, enabling value-preserving recycling pathways for widely used polymers polystyrene (PS) and poly(methyl methacrylate) (PMMA). By employing ball milling to induce chain scission, we demonstrate that mechanoradicals can be trapped by bis(butyl trithiocarbonate), yielding polymers with trithiocarbonate (TTC) end groups. Polymers degraded via ball milling showed significant reduction in molecular weight, ≈90% lower than the pristine polymers. These low molecular weight, TTC-functionalized polymers then served as macroinitiators for light-mediated controlled polymerization or, in the case of PMMA, as mediators for depolymerization under mild conditions. Chain extension of the degraded materials led to restored or increased molecular weight compared to the pristine polymers. Shear oscillatory rheology experiments revealed a recovery of entangled polymer properties, as evidenced by the reappearance of the rubbery plateau. We further showed that this “capture-and-repair” strategy is compatible with multiple cycles of degradation and chain extension, achieving repeated molecular weight recovery over three cycles. Additionally, we found that ball milling alone lowers the thermal depolymerization temperature of PMMA, enabling up to ≈44% depolymerization at 220 °C. Together, these findings highlight mechanoradical capture as a promising strategy to both enhance circularity and improve overall performance of mechanically recycled plastics.
pubs.acs.org
Effective Recycling Pathways of Commodity Polymers Enabled by Mechanoradical Capture
efzu.fa.em2.oraclecloud.com
A fully-funded 3-year PhD position in organic chemistry, C-H functionalization, and homogeneous enantioselective metal catalysis under the supervision of Associate Professor Søren Kramer is available ...
PhD scholarship in Organic Chemistry and Enantioselective Homogeneous Catalysis - DTU Chemistry
Megan R. Hill
Kramer Group at DTU
Last night, the 2025 Roger Adams Award recipient - Prof. Eric Jacobsen - delivered a fantastic lecture at the National Organic Symposium. Prof. John Wood provided a brilliant introduction. The award is sponsored by @OrgReactions and @OrgSynth Congratulations!
11mo
Organic Division of the ACS
The New York Times piece today about US science is terrible and wrong—in many ways. I could write a whole article about this, but as one example: “To close observers, the original crisis began well before any of this…” No. I’m a close observer of science, and this is incorrect.
9mo