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Small-Molecule-based Supramolecular Plastics Mediated by Liquid-Liquid Phase Separation

Rosenholm Jessica M.; Mäkilä Ermei; Vallittu Pekka; Yu Jingjing; Peurla Markus; Jia Chunman; Li Jianwei; Lassila Lippo; Zhao Zhao; Papageorgiou Anastassios C.; Jalkanen Sirpa; Qi Dawei

Small-Molecule-based Supramolecular Plastics Mediated by Liquid-Liquid Phase Separation

Rosenholm Jessica M.
Mäkilä Ermei
Vallittu Pekka
Yu Jingjing
Peurla Markus
Jia Chunman
Li Jianwei
Lassila Lippo
Zhao Zhao
Papageorgiou Anastassios C.
Jalkanen Sirpa
Qi Dawei
Katso/Avaa
Angew Chem Int Ed - 2022 - Yu et al.pdf (2.858Mb)
Lataukset: 

WILEY-V C H VERLAG GMBH
doi:10.1002/anie.202204611
URI
https://onlinelibrary.wiley.com/doi/full/10.1002/anie.202204611
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Julkaisun pysyvä osoite on:
https://urn.fi/URN:NBN:fi-fe2022091258747
Tiivistelmä

Plastics are one of the most widely used polymeric materials. However, they are often undegradable and non-recyclable due to the very stable covalent bonds of macromolecules, causing environmental pollution and health problems. Here, we report that liquid-liquid phase separation (LLPS) could drive the formation of robust, stable, and sustainable plastics using small molecules. The LLPS process could sequester and concentrate solutes, strengthen the non-covalent association between molecules and produce a bulk material whose property was highly related to the encapsulated water amounts. It was a robust plastic with a remarkable Young's modulus of 139.5 MPa when the water content was low while became adhesive and could instantly self-heal with more absorbed water. Finally, responsiveness enabled the material to be highly recyclable. This work allowed us to understand the LLPS at the molecular level and demonstrated that LLPS is a promising approach to exploring eco-friendly supramolecular plastics that are potential substitutes for conventional polymers.

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