4.7 Article

Poly(lactic acid)/carbon nanotube composites with enhanced electrical conductivity via a two-step dispersion strategy

Journal

COMPOSITES COMMUNICATIONS
Volume 30, Issue -, Pages -

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.coco.2022.101087

Keywords

Conductive polymer composites; Carbon nanotubes; Pickering emulsion; Masterbatch blending method

Funding

  1. International Cooperation Fund of Science and Technology Commission of Shanghai Municipality [21130750100]

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A two-step dispersion strategy using Pickering emulsion templating and masterbatch blending method was proposed to enhance the electrical conductivity of poly (lactic acid)/carbon nanotubes composites. The resulting composite showed low percolation threshold, high electrical conductivity, and excellent EMI shielding effectiveness and tensile strength.
Conductive polymer composites (CPCs) prepared by melt blending techniques display promising shielding properties, and could help address the growing challenges posed by electromagnetic interferences. However, it remains challenging with current processing techniques to achieve high electrical conductivity in CPCs owing to the poor dispersion of conductive fillers in polymer matrix. Herein, we propose a two-step dispersion strategy to enhance the electrical conductivity of poly (lactic acid) (PLA)/carbon nanotubes (CNTs) composites by employing Pickering emulsion templating and masterbatch blending method. The CNTs were dispersed uniformly via regenerated cellulose-assisted assembly on the surface of Pickering emulsions to yield PLA/CNT masterbatch. This was followed by melt blending with PLA granules to form an interconnected CNTs network within the PLA matrix. The resulting PLA/CNT composite exhibited a low percolation threshold of 0.46 vol%, and a high electrical conductivity of 72.2 S/m at 5.6 wt% CNT loading. Materials produced using this method outperformed PLA/CNT composites obtained by direct melt blending. Furthermore, the composite exhibited a maximum EMI shielding effectiveness of 31.1 dB, and superior tensile strength of 71.4 MPa. The two-step dispersion strategy provides an effective and versatile route to solve the dispersion problem of CNT and fabricate high performance CPCs.

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