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Articles

Tribological performance and mechanism of 2D calcium borate nanoslice capped with stearic acid in rapeseed oil

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Pages 540-550 | Received 16 Mar 2020, Accepted 12 Oct 2020, Published online: 19 Nov 2020

References

  • Liu, W.; Ye, C.; Gong, Q.; Wang, H.; Wang, P. Tribological Performance of Room-Temperature Ionic Liquids as Lubricant. Tribol. Lett. 2002, 13, 81–85.
  • Hong, X.; Tan, Y.; Zhou, C.; Xu, T.; Zhang, Z. Microstructure and Tribological Properties of Zr-Based Amorphous-Nanocrystalline Coatings Deposited on the Surface of Titanium Alloys by Electrospark Deposition. Appl. Surf. Sci. 2015, 356, 1244–1251.
  • Rajendhran, N.; Palanisamy, S.; Periyasamy, P.; Venkatachalam, R. Enhancing of the Tribological Characteristics of the Lubricant Oils Using Ni-Promoted MoS2 Nanosheets as Nano-Additives. Tribol. Int. 2018, 118, 314–328.
  • Zhang, W.; Zhou, M.; Zhu, H.; Tian, Y.; Wang, K.; Wei, J.; Ji, F.; Li, X.; Li, Z.; Zhang, P.; Wu, D. Tribological Properties of Oleic Acid-Modified Graphene as Lubricant Oil Additives. J. Phys. D: Appl. Phys. 2011, 44, 205303.
  • Joly-Pottuz, L.; Dassenoy, F.; Belin, M.; Vacher, B.; Martin, J.-M.; Fleischer, N. Ultralow-Friction and Wear Properties of IF-WS 2 under Boundary Lubrication. Tribol. Lett. 2005, 18, 477–485.
  • Zhou, J.; Wu, Z.; Zhang, Z.; Liu, W.; Dang, H. Study on an Antiwear and Extreme Pressure Additive of Surface Coated LaF3 Nanoparticles in Liquid Paraffin. Wear 2001, 249, 333–337.
  • Zhang, L.; Tu, J.; Wu, H.; Yang, Y. WS2 Nanorods Prepared by Self-Transformation Process and Their Tribological Properties as Additive in Base Oil. Mater. Sci. Eng. A 2007, 454455, 487–491.
  • Li, J.; Hao, L.; Xu, X.; Ren, T. Tribological Synergism of Surface‐Modified Calcium Borate Nanoparticles and Sulfurized Olefin. Ind. Lubr. Tribol. 2012, 64, 217–223.
  • Zhao, C.; Chen, Y.; Jiao, Y.; Loya, A.; Ren, G. The Preparation and Tribological Properties of Surface Modified Zinc Borate Ultrafine Powder as a Lubricant Additive in Liquid Paraffin. Tribol. Int. 2014, 70, 155–164.
  • Tang, G.; Su, F.; Xu, X.; Chu, P. K. 2D Black Phosphorus Dotted with Silver Nanoparticles: An Excellent Lubricant Additive for Tribological Applications. Chem. Eng. J. 2020, 392, 123631.
  • He, Z.; Xiong, L.; Xie, F.; Shen, M.; Han, S.; Hu, J.; Xu, W. Tribological and Antioxidation Properties Study of Two N-Containing Borate Ester Derivatives as Additive in Rapeseed Oil. Plos One. 2018, 13, e0207267.
  • Srinivas, V.; Thakur, R.; Jain, A.; Saratchandra Babu, M. Physicochemical Properties and Tribological Performance of Motorbike Lubricant Dispersed with Surface-Modified WS2 Nanoparticles. Proc. Inst. Mech. Eng. Part J: J. Eng. Tribol. 2019, 233, 1379–1388.
  • Rosentsveig, R.; Gorodnev, A.; Feuerstein, N.; Friedman, H.; Zak, A.; Fleischer, N.; Tannous, J.; Dassenoy, F.; Tenne, R. Fullerene-like MoS 2 Nanoparticles and Their Tribological Behavior. Tribol. Lett. 2009, 36, 175–182.
  • Pu, J.; Jiang, D.; Mo, Y.; Wang, L.; Xue, Q. Micro/Nano-Tribological Behaviors of Crown-Type Phosphate Ionic Liquid Ultrathin Films on Self-Assembled Monolayer Modified Silicon. Surf. Coat. Technol. 2011, 205, 4855–4863.
  • Jifen, W.; Wensheng, Z.; Guifen, J. Preparation and Tribological Properties of Tungsten Disulfide Hollow Spheres Assisted by Methyltrioctylammonium Chloride. Tribol. Int. 2010, 43, 1650–1658.
  • Gao, F.; Kotvis, P.; Tysoe, W. The Surface and Tribological Chemistry of Chlorine-and Sulfur-Containing Lubricant Additives. Tribol. Int. 2004, 37, 87–92.
  • Huang, Y.; Han, S.; Liu, S.; Wang, Y.; Li, J. Preparation and Tribological Properties of Surface-Modified Calcium Borate Nanoparticles as Additive in Lubricating Oil. Ind. Lubr. Tribol. 2014, 66, 143–150.
  • Zhao, G.; Zhao, Q.; Li, W.; Wang, X.; Liu, W. Tribological Properties of Nano‐Calcium Borate as Lithium Grease Additive. Lubr. Sci. 2014, 26, 43–53.
  • Martin, J. M.; Onodera, T.; Bouchet, M.-I. D. B.; Hatakeyama, N.; Miyamoto, A. Anti-Wear Chemistry of ZDDP and Calcium Borate Nano-Additive: Coupling Experiments, Chemical Hardness Predictions, and MD Calculations. Tribol. Lett. 2013, 50, 95–104.
  • Hao, L.; Li, J.; Xu, X.; Ren, T. Preparation and Tribological Properties of a Kind of Lubricant Containing Calcium Borate Nanoparticles as Additives. Ind. Lubr. Tribol. 2012, 64, 16–22.
  • Jia, Z.; Pang, X.; Li, H.; Ni, J.; Shao, X. Synthesis and Wear Behavior of Oleic Acid Capped Calcium Borate/Graphene Oxide Composites. Tribol. Int. 2015, 90, 240–247.
  • Li, W.; Cheng, Z.-L.; Liu, Z. Novel Preparation of Calcium Borate/Graphene Oxide Nanocomposites and Their Tribological Properties in Oil. J. Mater. Eng. Perform. 2017, 26, 285–291.
  • Erhan, S. Z.; Asadauskas, S. Lubricant Basestocks from Vegetable Oils. Ind. Crops Prod. 2000, 11, 277–282.
  • Boyde, S. Green Lubricants. Green Chem. 2002, 4, 293–307.
  • Willing, A. Lubricants Based on Renewable Resources – An Environmentally Compatible Alternative to Mineral Oil Products. Chemosphere 2001, 43, 89–98. DOI: https://doi.org/10.1016/s0045-6535(00)00328-3.
  • Goyan, R. L.; Melley, R. E.; Wissner, P. A.; Ong, W. C. Biodegradable Lubricants. Tribol. Lubr. Technol. 1998, 54, 10.
  • Fox, N.; Stachowiak, G. Vegetable Oil-Based Lubricants—A Review of Oxidation. Tribol. Int. 2007, 40, 1035–1046.
  • Cheenkachorn, K.; Fungtammasan, B. Development of Engine Oil Using Palm Oil as a Base Stock for Four-Stroke Engines. Energy 2010, 35, 2552–2556.
  • Song, X.; Hu, J.; Zeng, H. Two-Dimensional Semiconductors: recent Progress and Future Perspectives. J. Mater. Chem. C 2013, 1, 2952–2969.
  • Ren, B.; Gao, L.; Li, M.; Zhang, S.; Ran, X. Tribological Properties and anti-Wear Mechanism of ZnO@ Graphene Core-Shell Nanoparticles as Lubricant Additives. Tribol. Int. 2020, 144, 106114.
  • Kumar, H.; Harsha, A. Investigation on Friction, anti-Wear, and Extreme Pressure Properties of Different Grades of Polyalphaolefins with Functionalized Multi-Walled Carbon Nanotubes as an Additive. Trans. ASME, J. Tribol. 2020, 142, 081702
  • Patil, M. M.; Deshpande, V. V.; Desphande, S. B.; Samuel, V.; Ravi, V. Synthesis of Rutile from ATO and Stearic Acid. Mater. Lett. 2005, 59, 2673–2675.
  • Daage, M.; Chianelli, R. R. Structure-Function Relations in Molybdenum Sulfide Catalysts: The "Rim-Edge" Model. J. Catal. 1994, 149, 414–427.
  • Boshui, C.; Kecheng, G.; Jianhua, F.; Jiang, W.; Jiu, W.; Nan, Z. Tribological Characteristics of Monodispersed Cerium Borate Nanospheres in Biodegradable Rapeseed Oil Lubricant. Appl. Surf. Sci. 2015, 353, 326–332.
  • Gu, K.; Chen, B.; Chen, Y. Preparation and Tribological Properties of Lanthanum-Doped TiO2 Nanoparticles in Rapeseed Oil. J. Rare Earths 2013, 31, 589–594.
  • Gu, K-C.; Chen, B-S.; Wang, X-M.; Wang, J.; Fang, J-H.; Wu, J.; Huang, L-C. Preparation, Friction and Wear Properties of Hydrophobic Lanthanum Borate Nanorods in Rapeseed Oil. Trans. Nonferrous Metals Soc. China 2014, 24, 3578–3584.
  • Qian, J.; Yin, X.; Wang, N.; Liu, L.; Xing, J. Preparation and Tribological Properties of Stearic Acid-Modified Hierarchical Anatase TiO2 Microcrystals. Appl. Surf. Sci. 2012, 258, 2778–2782.
  • Gu, K.; Chen, B.; Wang, X.; Wang, J.; Fang, J.; Wu, J.; Yang, X. Preparation, Friction, and Wear Behaviors of Cerium-Doped Anatase Nanophases in Rapeseed Oil. Ind. Eng. Chem. Res. 2014, 53, 6249–6254.
  • Humbert, B.; Alnot, M.; Quilès, F. Infrared and Raman Spectroscopical Studies of Salicylic and Salicylate Derivatives in Aqueous Solution. Spectrochim Acta Part A Mol. Biomol. Spectrosc. 1998, 54, 465–476.
  • Araújo, A. S. M.; Flores, P. R. F.; Feitosa, V. P.; Valadas, L. A. R.; Paula, DMd.; Fiallos, NdM.; Rola, I. R.; Rola, J. A. S.; Fiallos, ACDM. Micro-Raman Spectroscopy, Colour Stability, Roughness and Mass Variation of Removable Partial Dentures after Cleansing with White Wine Vinegar. JYP 2018, 10, 399–403.
  • Yu, Y.; Wang, Y.; Lin, K.; Hu, N.; Zhou, X.; Liu, S. Complete Raman Spectral Assignment of Methanol in the C-H Stretching Region. J. Phys. Chem. A. 2013, 117, 4377–4384. DOI: https://doi.org/10.1021/jp400886y.
  • Hendra, P. J.; Maddams, W. F.; Royaud, I. A. M.; Willis, H. A.; Zichy, V. The Application of Fourier Transform Raman Spectroscopy to the Identification and Characterization of Polyamides—I. Single Number Nylons. Spectrochim. Acta Part A Mole. Biomol. Spectrosc. 1990, 46, 747–756.
  • Gao, G. T.; Mikulski, P. T.; Harrison, J. A. Molecular-Scale Tribology of Amorphous Carbon Coatings: effects of Film Thickness, Adhesion, and Long-Range Interactions. J. Am. Chem. Soc. 2002, 124, 7202–7209. DOI: https://doi.org/10.1021/ja0178618.
  • Xu, Y.; Hu, E.; Hu, K.; Xu, Y.; Hu, X. Formation of an Adsorption Film of MoS2 Nanoparticles and Dioctyl Sebacate on a Steel Surface for Alleviating Friction and Wear. Tribol. Int. 2015, 92, 172–183.
  • Song, H.-J.; Li, N. Frictional Behavior of Oxide Graphene Nanosheets as Water-Base Lubricant Additive. Appl. Phys. A 2011, 105, 827–832.
  • Liu, P.; Fang, J.; Wang, X.; Wu, J.; Chen, B. A Novel Boron-Nitrogen Modified Castor Oil as an Ecofriendly and Efficient Lubricant Additive. J. Dispersion Sci. Technol. 2019, 1–10. DOI: https://doi.org/10.1080/01932691.2019.1667818
  • Dai, W.; Kheireddin, B.; Gao, H.; Liang, H. Roles of Nanoparticles in Oil Lubrication. Tribol. Int. 2016, 102, 88–98.
  • Hu, K. H.; Hu, X. G.; Xu, Y. F.; Huang, F.; Liu, J. S. The Effect of Morphology on the Tribological Properties of MoS2 in Liquid Paraffin. Tribol. Lett. 2010, 40, 155–165.

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