Fabrication of PLCL Block Polymer with Tunable Structure and Properties for Biomedical Application

Author:

Luo Chenmin1,Liu Shengyang1,Luo Wei2,Wang Jing1,He Hongyan1,Chen Can1,Xiao Lan34,Liu Changsheng12,Li Yulin12ORCID

Affiliation:

1. Engineering Research Center for Biomedical Materials of Ministry of Education Key Laboratory for Ultrafine Materials of Ministry of Education Frontiers Science Center for Materiobiology and Dynamic Chemistry School of Material Science & Engineering East China University of Science and Technology Shanghai 200237 China

2. Wenzhou Institute of Shanghai University Wenzhou 325000 China

3. School of Mechanical Medical and Process Engineering Centre for Biomedical Technologies Queensland University of Technology (QUT) 60 Musk Avenue, Kelvin Grove, QLD 4059 Brisbane Queensland 4000 Australia

4. The Australia‐China Centre for Tissue Engineering and Regenerative Medicine (ACCTERM) Queensland University of Technology (QUT) 60 Musk Avenue, Kelvin Grove, QLD 4059 Brisbane Queensland 4000 Australia

Abstract

AbstractBiodegradable materials are pivotal in the biomedical field, where how to precisely control their structure and performance is critical for their translational application. In this study, poly(L‐lactide‐bε‐caprolactone) block copolymers (bPLCL) with well‐defined segment structure are obtained by a first synthesis of poly(ε‐caprolactone) soft block, followed by ring opening polymerization of lactide to form poly(L‐lactide acid)  hard block. The pre‐polymerization allows for fabrication of bPLCL with the definite compositions of soft/hard segment while preserving the individual segment of their special soft or hard segment. These priorities make the bPLCL afford biodegradable polymer with better mechanical and biodegradable controllability than the random poly(L‐lactide‐co‐ε‐caprolactone) (rPLCL) synthesized via traditional one‐pot polymerization. 10 mol% ε‐caprolactone introduction can result in a formation of an elastic polymer with elongation at break of 286.15% ± 55.23%. Also, bPLCL preserves the unique crystalline structure of the soft and hard segments to present a more sustainable biodegradability than the rPLCL. The combinative merits make the pre‐polymerization technique a promising strategy for a scalable production of PLCL materials for potential biomedical application.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Biomaterials,Bioengineering,Biotechnology

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