A practical technique to manufacture biaxially oriented high-density Polyethylene film via precise control of amorphous region

IF 4.1 2区 化学 Q2 POLYMER SCIENCE
Daoxin Zhang, Hong Fan, Zhihai Zhang, Ya Cao, Tong Wu, Qiang Fu
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引用次数: 0

Abstract

Biaxially oriented high-density polyethylene (BOHDPE) films are urgently required to address the pollution issue of traditional plastic films, which remains a great challenge worldwide. This study prepared four HDPE/liquid paraffin (LP) precursor sheets with LP content ranging from 1% to 3%. The condensed structures were characterized by positron annihilation lifetime spectroscopy and dynamic mechanical analysis tests. It is found that the diluent LP does not change the crystalline structure of PE and exists directly in the amorphous region between lamellar crystals, leading to the reduction of free volume pores fraction from 4% to 2.2%. Furthermore, LP activates the β relaxation of stress transmitter (ST) in the amorphous region of HDPE. Then, the stress-strain behavior was conducted systematically, showing that the minor addition of LP improves the stretchability of HDPE substantially. LP can act as ST to initiate homogenous yielding and accelerate the subsequent disentanglement of ST at higher strain. Additionally, we discovered that cavitation is suppressed completely as LP content reaches 2%, proving that cavitation is triggered by the coalescence of adjacent free volume pores rather than the enlargement of individual free volume pores. Finally, biaxial stretching was conducted, showing that the maximal draw ratio of pristine HDPE is only 3×3, while that of PE@3%LP is 7×7. Accordingly, BOHDPE films with superior performances were successfully produced, providing a practical solution to solve the problem of plastic pollution via the “Reduce, Reuse and Recycle” strategy.

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来源期刊
Polymer
Polymer 化学-高分子科学
CiteScore
7.90
自引率
8.70%
发文量
959
审稿时长
32 days
期刊介绍: Polymer is an interdisciplinary journal dedicated to publishing innovative and significant advances in Polymer Physics, Chemistry and Technology. We welcome submissions on polymer hybrids, nanocomposites, characterisation and self-assembly. Polymer also publishes work on the technological application of polymers in energy and optoelectronics. The main scope is covered but not limited to the following core areas: Polymer Materials Nanocomposites and hybrid nanomaterials Polymer blends, films, fibres, networks and porous materials Physical Characterization Characterisation, modelling and simulation* of molecular and materials properties in bulk, solution, and thin films Polymer Engineering Advanced multiscale processing methods Polymer Synthesis, Modification and Self-assembly Including designer polymer architectures, mechanisms and kinetics, and supramolecular polymerization Technological Applications Polymers for energy generation and storage Polymer membranes for separation technology Polymers for opto- and microelectronics.
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