Low density polyethylene-multi-walled carbon nanotube nanocomposite membranes with enhanced conductivity for highly sensitive vapor sensing

Author:

Shi Suyu1,Xu Wenzhong1,Zhou Bing2,Qin Shengxue3,Liu Xianhu2,Li Handong4

Affiliation:

1. Henan University of Engineering

2. Zhengzhou University

3. Shandong University of Science and Technology

4. Northumbria University

Abstract

Abstract A facile technique was reported for fabricating high conductivity and improved strength of linear low-density polyethylene/multi-walled carbon nanotubes (LLDPE /MWNTs) composite films by the ultrasonication anchoring technique and compression molding treatment. Thermal property, mechanical property, electrical conductivity, microstructures, optical property and organic vapor sensing behaviors of the MWNTs/LLDPE composite films were studied. The MWNTs are uniformly anchored onto the surface of LLDPE matrix and the conductive networks are easily formed by the ultrasonication anchoring technique. After compression molding treatment, the incorporation of MWNTs causes an easier formation of LLDPE extended-chain, which is wrapped around of MWNTs shish. The MWNTs/LLDPE composite films exhibit excellent conductivity of 2.79×105 Ω∙cm with 0.15 wt% MWNTs anchored. Meanwhile, the tensile strength of the composite films reaches 18.9 MPa. Interestingly, transparency is not significantly reduced. The sensitivity and reversibility to two typical solvents, i.e., acetone and xylene, during exposure-drying runs have been demonstrated. This work opens a new orientation to optimize the conductivity of MWNTs/LLDPE composite films with a wide range of prospect in the field of vapor sensor.

Publisher

Research Square Platform LLC

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