Epstein Alexander R, Demarteau Jeremy, Helms Brett A, Persson Kristin A
Materials Sciences and Engineering, University of California, Berkeley, Berkeley, California 94720, United States.
The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.
J Am Chem Soc. 2023 Apr 12;145(14):8082-8089. doi: 10.1021/jacs.3c00772. Epub 2023 Mar 28.
The design of circular polymers has emerged as a necessity due to the lack of efficient recycling methods for many commodity plastics, particularly those used in durable products. Among the promising circular polymers, polydiketoenamines (PDKs) stand out for their ability to undergo highly selective depolymerization in strong acid, allowing monomers to be recovered from additives and fillers. Varying the triketone monomer in PDK variants is known to strongly affect the depolymerization rate; however, it remains unclear how the chemistry of the cross-linker, far from the reaction center, affects the depolymerization rate. Notably, we found that a proximal amine in the cross-linker dramatically accelerates PDK depolymerization when compared to cross-linkers obviating this functionality. Moreover, the spacing between this amine and the diketoenamine bond offers a previously unexplored opportunity to tune PDK depolymerization rates. In this way, the molecular basis for PDK circularity is revealed and further suggests new targets for the amine monomer design to diversify PDK properties, while ensuring circularity in chemical recycling.
由于许多商用塑料缺乏有效的回收方法,尤其是用于耐用产品的那些塑料,环状聚合物的设计已成为一种必要。在有前景的环状聚合物中,聚二酮烯胺(PDK)因其在强酸中能够进行高度选择性解聚而脱颖而出,使得单体能够从添加剂和填料中回收。已知在PDK变体中改变三酮单体对解聚速率有很大影响;然而,远离反应中心的交联剂的化学性质如何影响解聚速率仍不清楚。值得注意的是,我们发现与消除该官能团的交联剂相比,交联剂中的近端胺会显著加速PDK的解聚。此外,该胺与二酮烯胺键之间的间距为调节PDK解聚速率提供了一个前所未有的机会。通过这种方式,揭示了PDK环状结构的分子基础,并进一步为胺单体设计提出了新的目标,以实现PDK性能的多样化,同时确保化学回收中的环状结构。