4.7 Article

Enhanced mechanical and tribological performance of PA66 nanocomposites containing 2D layered α-zirconium phosphate nanoplatelets with different sizes

期刊

ADVANCED COMPOSITES AND HYBRID MATERIALS
卷 2, 期 3, 页码 407-422

出版社

SPRINGERNATURE
DOI: 10.1007/s42114-019-00100-z

关键词

Zirconium phosphate; Nanocomposites; Mechanical and tribological properties; Nanolubricants

资金

  1. Southern University of Science and Technology (SUSTech)
  2. Recruitment Program of Global Youth Experts of China
  3. Foundation of Shenzhen Science and Technology Innovation Committee [JCYJ20170817110440310, KQJSCX20170726145415637, JCYJ20160315164631204]

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Two-dimensional layered alpha-zirconium phosphate (ZrP) nanoplatelets with two distinguished sizes but similar aspect ratio were directly incorporated into polyamide 66 (PA66) by simple melt processing without using any surfactants. Through the electron microscopy analysis, the large ZrP nanoplatelets with similar to 1.33 mu m in size and similar to 5.8 in aspect ratio exhibit a uniform dispersion in PA66 matrices at the filler loading up to 3 wt%, while the small ZrP nanoplatelets with an average size of similar to 230 nm and aspect ratio of similar to 6.2 tend to form large-scale aggregates in PA66 even at 1 wt% loading. Tensile testing results illustrate that the large ZrP nanoplatelets exhibit a better reinforcement effect in PA66 than the small ones. With the incorporation of 3 wt% large ZrP nanoplatelets, the PA66 nanocomposites exhibit an increase of similar to 10% in tensile modulus and similar to 14% in tensile strength as compared with the pure PA66. Pin-on-disc wear tests illustrate that the nanocomposites containing large ZrP nanoplatelets have better anti-wear properties than those prepared with small ZrP nanoplatelets. In specific, the PA66 nanocomposites containing 1 wt% large ZrP nanoplatelets show a similar to 43% decrease in friction coefficient and a similar to 59% reduction in the wear rate under the test condition of 40 N in load and 0.6 m/s in velocity. The mechanisms that are responsible for the mechanical and tribological enhancements in the PA66/ZrP nanocomposites have also been discussed.

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