Advances in the Synthesis of Chemically Recyclable Polymers

Author:

Li Xin‐Lei1,Ma Kai1,Xu Fei1,Xu Tie‐Qi1ORCID

Affiliation:

1. State Key Laboratory of Fine Chemicals Department of Chemistry School of Chemical Engineering Dalian University of Technology Dalian 116024 P. R. China

Abstract

AbstractThe development of modern society is closely related to polymer materials. However, the accumulation of polymer materials and their evolution in the environment causes not only serious environmental problems, but also waste of resources. Although physical processing can be used to reuse polymers, the properties of the resulting polymers are significantly degraded. Chemically recyclable polymers, a type of polymer that degrades into monomers, can be an effective solution to the degradation of polymer properties caused by physical recycling of polymers. The ideal chemical recycling of polymers, i. e., quantitative conversion of the polymer to monomers at low energy consumption and repolymerization of the formed monomers into polymers with comparable properties to the original, is an attractive research goal. In recent years, significant progress has been made in the design of recyclable polymers, enabling the regulation of the “polymerization‐depolymerization” equilibrium and closed‐loop recycling under mild conditions. This review will focus on the following aspects of closed‐loop recycling of poly(sulfur) esters, polycarbonates, polyacetals, polyolefins, and poly(disulfide) polymer, illustrate the challenges in this area, and provide an outlook on future directions.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Chemistry,Biochemistry,Organic Chemistry

Reference207 articles.

1. Biodegradation of plastics for sustainable environment

2. R. Geyer J. R. Jambeck K. L. Law Science Advances 3 e1700782.

3. Strategies to reduce the global carbon footprint of plastics

4. The New Plastics Economy Rethinking the future of plastics https://www. ellenmacarthurfoundation.org/ publications/the-new-plastics-econom y-rethinking-the-future-of-plastics-catalysing-action.

5. Critical advances and future opportunities in upcycling commodity polymers

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