Abstract

In this work, tetrakis(dimethyllamino)ethylene (TDAE) plasticized polynorbornene (PNB) was used as the matrix, sulfur (S) and dicumyl peroxide (DCP) were simultaneously used as crosslinking agents to construct dual covalent cross-linking networks in PNB. The effects of different amounts of cross-linkers on the crosslinking degree, mechanical property, glass transition temperature, and PNB shape memory performance were investigated. Two crosslinking mechanisms were examined by Fourier transform infrared spectrometer and Raman spectrometer. The results showed that sulfur-rich cross-linked PNB exhibited a higher crosslinking degree, tensile strength, and slightly higher glass transition temperature than the DCP-rich system. Cross-linked PNB presented better shape memory performance than the uncross-linked one. Sulfur-rich cross-linked PNB showed even better shape memory behavior than the DCP-rich system, both with a shape fixation ratio of over 99% and a shape recovery ratio of over 90%. The reaction mechanism of sulfur and DCP in cross-linking PNB was different. Sulfur reacted with the α-H in PNB to form monosulfide bonds, disulfide bonds, and polysulfide bonds in PNB and the number of polysulfide bonds increased with increased amounts of sulfur. DCP reacted with the double bonds in PNB to form C-C covalent bond crosslinking networks. The crosslinking mechanism revealed that the sulfur-containing cross-linked bonds, especially polysulfide bonds, were more flexible and bore large deformation, which gave the PNB excellent mechanical properties and ensured a higher shape entropy elastic recovery ratio.

Highlights

  • Shape memory polymer (SMP) is a kind of intelligent material, which can change its original shape and store a temporary shape

  • SMP can recover to its original shape by external stimuli [1,2,3,4,5]

  • Due to the need to repeatedly change the temperature before and after deformation, which consumes extra time and energy, people have proposed the concept of reversible plasticity shape memory polymer (RPSMP) [11,12]

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Summary

Introduction

Shape memory polymer (SMP) is a kind of intelligent material, which can change its original shape and store a temporary shape. SMPs have the advantages of being light weight and having an adjustable shape, high elasticity, and high-cost performance. Due to the need to repeatedly change the temperature before and after deformation, which consumes extra time and energy, people have proposed the concept of reversible plasticity shape memory polymer (RPSMP) [11,12]. It is critical to explore the influence of the cross-linking network on PNB shape memory performance. Gong [19] prepared polynorbornene/zinc dimethacrylate (ZDMA)/dicumyl peroxide (DCP) composites and explored the effect of a double covalent cross-linking network on the shape memory performance of PNB. The effects of different amounts of cross-linkers on the crosslinking degree, mechanical property, glass transition temperature, and PNB shape memory performance were investigated. This study is expected to provide more reference for improving shape memory performance of PNB

Materials
Preparation of the Samples
Dynamic Mechanical Properties
Shape Memory Performance
Results and Discussions
Glass Transition Temperature
Mechanical Properties
Dynamic
Mechanism analysis crosslinking
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Conclusions
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