Identification of percolation threshold of spray‐dried cellulose nanocrystals in homopolymer polypropylene composites

Author:

Wang Xueqi1,Wang Pixiang2,Liu Shaoyang2,Zhan Ke1,Via Brian1,Gallagher Tom1,Smidt Mathew3,Gardner Douglas J.45,Elder Thomas3,Peng Yucheng1ORCID

Affiliation:

1. College of Forestry, Wildlife, and Environment, Auburn University Auburn Alabama USA

2. Department of Chemistry and Physics Troy University Troy Alabama USA

3. USDA‐Forest Service, Southern Research Station Auburn Alabama USA

4. School of Forest Resource, University of Maine Orono Maine USA

5. Advanced Structures and Composites Center, University of Maine Orono Maine USA

Abstract

AbstractUnderstanding the percolation threshold is essential for determining the performance of particle‐reinforced polymer composites. Spray‐dried cellulose nanocrystals (SDCNC) of micrometer size reinforced homopolymer polypropylene (HPP) composites at 20, 30, 40, and 50 wt.% were prepared to investigate the percolation threshold of SDCNC particles in HPP. The effect of a compatibilizer (maleic anhydride polypropylene (MAPP)) at 3, 5, and 7 wt.%, on the SDCNC percolation networks and composites performance were also studied. The results indicated that SDCNC particle percolation networks in HPP were established between 30 and40 wt.%. For composites without MAPP, the impact strength significantly increased by up to 23% below the percolation threshold and declined beyond it. The peak crystallization temperature of HPP was steadily increased until 30 wt.% SDCNC particles were added due to the SDCNC saturated nucleation function at the threshold. Introducing MAPP significantly improved tensile strength (58%), tensile strain (61%), flexural strength (45%), and impact strength (91%) compared with the corresponding composites without MAPP, attributed to the enhanced interfacial adhesion between the SDCNC particles and HPP. Water absorption results indicated that adding MAPP changed the SDCNC particle distribution networks within the matrix above the percolation threshold but did not change it below the threshold.

Funder

Southern Research Station

Alabama Agricultural Experiment Station

National Institute of Food and Agriculture

Publisher

Wiley

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