Extremely Strong and Tough Biodegradable Poly(urethane) Elastomers with Unprecedented Crack Tolerance via Hierarchical Hydrogen‐Bonding Interactions

Author:

Guo Rui1,Zhang Qiang1,Wu Youshen1,Chen Hongbing2,Liu Yanghe3,Wang Jingjing4,Duan Xianglong5,Chen Quan2,Ge Zhishen1,Zhang Yanfeng1ORCID

Affiliation:

1. Engineering Research Center of Energy Storage Materials and Devices Ministry of Education School of Chemistry Xi'an Jiaotong University Xi'an 710049 China

2. State Key Laboratory of Polymer Physics and Chemistry Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun 130022 China

3. Key Laboratory for Non‐equilibrium Synthesis and Modulation of Condensed Matter School of Chemistry Xi'an Jiaotong University Xi'an 710049 China

4. School of Pharmacy Health Science Center Xi'an Jiaotong University Xi'an 710061 China

5. Second Department of General Surgery Shaanxi Provincial People's Hospital and Third Affiliated Hospital of Xi'an Jiaotong University Xi'an 710068 China

Abstract

AbstractThe elastomers with the combination of high strength and high toughness have always been intensively pursued due to their diverse applications. Biomedical applications frequently require elastomers with biodegradability and biocompatibility properties. It remains a great challenge to prepare the biodegradable elastomers with extremely robust mechanical properties for in vivo use. In this report, we present a polyurethane elastomer with unprecedented mechanical properties for the in vivo application as hernia patches, which was obtained by the solvent‐free reaction of polycaprolactone (PCL) and isophorone diisocyanate (IPDI) with N,N‐bis(2‐hydroxyethyl)oxamide (BHO) as the chain extender. Abundant and hierarchical hydrogen‐bonding interactions inside the elastomers hinder the crystallization of PCL segments and facilitate the formation of uniformly distributed hard phase microdomains, which miraculously realize the extremely high strength and toughness with the fracture strength of 92.2 MPa and true stress of 1.9 GPa, while maintaining the elongation‐at‐break of ≈1900% and ultrahigh toughness of 480.2 MJ m−3 with the unprecedented fracture energy of 322.2 kJ m−2. Hernia patches made from the elastomer via 3D printing technology exhibit outstanding mechanical properties, biocompatibility, and biodegradability. The robust and biodegradable elastomers demonstrate considerable potentials for in vivo applications.

Funder

National Natural Science Foundation of China

Xi'an Science and Technology Bureau

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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