High performances of cellulose nanocrystal based bicomponent supramolecular hydrogel lubricant.

Carbohydr Polym

School of Materials Science and Engineering, Central South University of Forestry and Technology, Changsha 410000, China; Hunan Province Key Laboratory of Materials Surface, Interface Science and Technology, Changsha 410000, China.

Published: November 2024

AI Article Synopsis

  • A novel hydrogel made from cellulose nanocrystal (CNC) and diglycerol (DG) was developed to address the drawbacks of water-based lubricants.
  • The gel's formation relies on a network of hydrogen bonds that helps hold water, and it has been shown to have excellent viscoelasticity, thermal stability, and anti-rust properties.
  • Testing on a specific hydrogel composition (CNC/2.4-DG/0.1) revealed it outperformed traditional lubricants in friction and wear, thanks to the combined effects of CNC and DG.

Article Abstract

To improve the limitations of water-based lubricants, a novel cellulose nanocrystal based supramolecular hydrogel (CNC/x-DG/y) was prepared by mixing cellulose nanocrystal (CNC) and diglycerol (DG) into deionized water (DW). The hydrogel was characterized to determine its material ratio and gelation mechanism. When DW was fixed at 1 mL, CNC content should be no <2.4 wt% and DG content 0.1-1.3 mL. The gelification was driven by the multiple H-bond network between CNC and DG, which immobilized water molecules. The rheological performances, the anti-rust property and the volatilization behaviour of the hydrogel were further studied. The results showed that the hydrogel had satisfactory viscoelasticity, excellent thermal stability, strong creep recovery, high anti-rust performance and low volatilization rate, which were exactly its advantages for use as lubricant. A typical representative of the hydrogel, namely CNC/2.4-DG/0.1, was selected to evaluate the tribological performances, and the resulting worn surfaces were analyzed. CNC/2.4-DG/0.1 exhibited a lower friction coefficient of 0.059 and a smaller wear volume of 0.81 × 10 mm, compared to DW(1 mL) + CNC(2.4 wt%) and DW(1 mL) + DG(0.1 mL). The outstanding tribological performances of CNC/2.4-DG/0.1 were reasonably attributed to the synergistic mending effect of CNC and DG and the dissipative effect of H-bonds between the two.

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Source
http://dx.doi.org/10.1016/j.carbpol.2024.122542DOI Listing

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