REVIEW PAPER |
|
|
|
|
|
Review on Oleophylic Modification and Tribological Properties of Titanium Dioxide Nanoparticles |
LIN Bin1,2, CHEN Guoxu1, SU Bin2, XU Wanli2
|
1 Dep. of Oil Application and Management Engineering, Logistic Engineering University, Chongqing 401311; 2 Beijing Oil Research Institute of PLA, Beijing 102300 |
|
|
Abstract Titanium dioxide nanoparticles have excellent self-repair properties. But due to the poor dispersion stability in lubricant and poor tribological properties under normal conditions, this self-repair additives have not been widely used. In this paper, the research results of the modification and tribological properties of titanium dioxide nanoparticles in recent years are reviewed, the existing problems are analyzed, and the prospect of titanium dioxide additives are prospected.
|
Published: 10 November 2017
Online: 2018-05-08
|
|
|
|
1 Xiao D Z, Chen G X, Chen P, et al. A review of oil-soluble organo-molybdenum as friction modifier additive[J]. Mater Rev:Rev, 2016,30(12):59(in Chinese). 肖德志, 陈国需, 程鹏,等. 油溶性有机钼作为摩擦改进剂的研究进展[J]. 材料导报:综述篇, 2016,30(12):59. 2 Xu B S, Zhu S, Ma S N, et al. Construct and development of equipment remanufacture engineering specialty[J]. Chin Surf Eng, 2003,16(3):1(in Chinese). 徐滨士, 朱胜, 马世宁,等. 装备再制造工程学科的建设和发展[J]. 中国表面工程, 2003,16(3):1. 3 Li J, Chen G X, Li H F, et al. Testing methods of repairing effect to self-repairing additives[J]. Synth Lubricants, 2014,41(1):29(in Chinese). 李进, 陈国需, 李华峰,等. 自修复添加剂修复效果的检测方法[J]. 合成润滑材料, 2014,41(1):29. 4 Liang C, Chen W G, Feng S S, et al. Friction properties of modified nanoparticles TiO2/SiO2 as lubricant additives[J]. Guangdong Chem Ind, 2014(8):1(in Chinese). 梁超, 陈文刚, 冯少盛, 等. 改性纳米TiO2/SiO2作为润滑油添加剂的摩擦性能研究[J]. 广东化工, 2014(8):1. 5 Xie X B, Chen G X, Sun X, et al. Investigation of wear automatic restoration action and properties of nano-TiO2 as lubricating additive[J]. Chin Surf Eng, 2008(2):36(in Chinese). 谢学兵, 陈国需, 孙霞, 等. 润滑油纳米TiO2添加剂的摩擦自修复及其性能研究[J]. 中国表面工程, 2008(2):36. 6 Ye W, Cheng T, Ye Q, et al. Preparation and tribological properties of tetrafluorobenzoic acid-modified TiO2, nanoparticles as lubricant additives[J]. Mater Sci Eng A, 2003,359(1-2):82. 7 Guo L Y. Study on dispersion and the surface modification of nanometer titanium dioxide [D]. Shanghai:Donghua University, 2015(in Chinese). 郭璐瑶. 纳米二氧化钛分散及其表面改性研究[D]. 上海:东华大学, 2015. 8 Lin H X, Wang X X, Fu X Z. Properties and distribution of the surface hydroxyl groups of TiO2[J]. Prog Chem, 2007(5):665(in Chinese). 林华香, 王绪绪, 付贤智. TiO2表面羟基及其性质[J]. 化学进展, 2007(5):665. 9 Finnie K S, Cassidy D J, Bartlett J R, et al. IR spectroscopy of surface water and hydroxyl species on nanocrystalline TiO2 films[J]. Langmuir, 2001,17(3):816. 10Takeuchi M, Martra G, Coluccia S, et al. Investigations of the structure of H2O clusters adsorbed on TiO2 surfaces by near-infrared absorption spectroscopy[J]. J Phys Chem B, 2005,109(15):7387. 11Herman G S, Dohnalek Z, Ruzycki N, et al. Experimental investigation of the interaction of water and methanol with anatase-TiO2(101)[J]. J Phys Chem B, 2003,107(12):2788. 12Vittadini A, Selloni A, Rotzinger F P, et al. Structure and energe-tics of water adsorbed at TiO2anatase (101) and (001) surfaces[J]. Phys Rev Lett, 1998,81(14):2954. 13Bourgeois S, Jomard F, Perdereau M. Use of isotopic labelling in a SIMS study of the hydroxylation of TiO2 (100) surfaces[J]. Surf Sci, 1992,279(3): 349. 14Bezrodna T, Puchkovska G, Shymanovska V, et al. IR-analysis of H-bonded H2O on the pure TiO2 surface[J]. J Mol Struct, 2004,700(1): 175. 15Kesselman J M, Weres O, And N S L, et al. Electrochemical production of hydroxyl radical at polycrystalline Nb-doped TiO2electrodes and estimation of the partitioning between hydroxyl radical and direct hole oxidation pathways[J]. J Phys Chem B, 1997,101(14):2637. 16Augugliaro V, Palmisano L, Sclafani A, et al. Photocatalytic degradation of phenol in aqueous titanium dioxide dispersions[J]. Toxicol Environ Chem, 1988,16(2):89. 17Okamoto K, Yamamoto Y, Tanaka H, et al. Heterogeneous photocatalytic decomposition of phenol over TiO2 powder[J]. Bull Chem Soc Jpn, 1985,58(7):2015. 18Gu K C, Chen B S, Wei Y L, et al. Preparation,friction and wear properties of hydrophobic TiO2 nanoparticles in rapeseed oil[J]. J Logistic Engineering University, 2014(3):54(in Chinese). 谷科城, 陈波水, 韦友亮, 等. 疏水性纳米TiO2制备及其在菜籽油中的摩擦磨损性能[J]. 后勤工程学院学报, 2014(3):54. 19Chen P, Chen M, Gao F. Study on tribological performance of TiO2 nano-particles[J]. J Chongqing Petroleum College, 2004(2):20(in Chinese). 程鹏, 陈明, 高峰. 纳米TiO2添加剂的摩擦学性能研究[J]. 重庆石油高等专科学校学报, 2004(2):20. 20Cheng P, Li H F, Zhao L T, et al. Study on the surface modification of TiO2 nano-particles lube additive and its self-repairing performance[J]. Petroleum Processing Petrochem, 2006(9):55(in Chinese). 程鹏, 李华峰, 赵立涛, 等. 润滑油用纳米TiO2的表面改性及自修复性能研究[J]. 石油炼制与化工, 2006(9):55. 21Hofer R, Textor A M, Spencer N D. Alkyl phosphate monolayers, self-assembled from aqueous solution onto metal oxide surfaces[J]. Langmuir, 2001,17(13):4014. 22Piwoński I, Kisielewska A. Dialkyldithiophosphate acids (HDDPs) as effective lubricants of sol-gel titania coatings in technical dry friction conditions[J]. Tribology Lett, 2012,45(45):237. 23Bahloul W, Mélis F, Bounor-Legaré V, et al. Structural characterisation and antibacterial activity of PP/TiO2 nanocomposites prepared by an in situ sol-gel method[J]. Mater Chem Phys, 2012,134(1): 399. 24Cho S, Choi W. Solid-phase photocatalytic degradation of PVC-TiO2 polymer composites[J]. J Photochem Photobiol A: Chem, 2001,143(2): 221. 25Deng K L, Ren X B, Jiao Y S, et al. Preparation of poly (methyl acrylate)/TiO2 composites by potassium diperiodatocuprate initiated grafting copolymerization[J]. Iran Polym J, 2010,19(1):17. 26Li X W, Song R G, Jiang Y, et al. Surface modification of TiO2 nanoparticles and its effect on the properties of fluoropolymer/TiO2 nanocomposite coatings[J]. Appl Surf Sci, 2013,276:761. 27Li G L, Xu L Q, Tang X, et al. Hairy hollow microspheres of fluorescent shell and temperature-responsive brushes via combined distillation-precipitation polymerization and thiol ene click chemistry[J]. Macromolecules, 2010,43(13):5797. 28Ou Z W. In-situ synthesis and tribological characteristic of nanoparticles possessing the particularity of ultra dispersion and stabilization [D]. Chongqing:Chongqing University, 2003 (in Chinese). 欧忠文. 基于原位合成方法的超分散稳定纳米组元的制备及其摩擦学特性 [D]. 重庆: 重庆大学, 2003. 29Ning R, Chen D, Zhang Q, et al. Surface modification of titanium hydride with epoxy resin via microwave-assisted ball milling[J]. Appl Surf Sci, 2014,316(1):632. 30Yan J, Dai L Y, Meng R G, et al. Tribological properties of surface modificated nano-TiO2 prepared by plasma assisted ball milling[J]. Tribology, 2016(1):20(in Chinese). 闫锦, 戴乐阳, 孟荣刚, 等. 等离子体辅助球磨制备表面修饰纳米TiO2的摩擦学性能分析[J]. 摩擦学学报, 2016(1):20. 31Tao Y G, Zhen J, Zhu L B, et al. Phosphate regulate the microstructure and surface hydroxyl density of nano-titanium dioxide[J]. Chem Ind Eng Prog, 2015(5):1401(in Chinese). 陶玉贵, 郑洁, 朱龙宝, 等. 磷酸盐调控纳米TiO2微结构及其表面羟基密度[J]. 化工进展, 2015(5):1401. 32徐东鹏, 夏永侠, 李玉福. 微粒状氧化物表面羟基的测定[J]. 化学通报, 1981(5):25. 33Xue Q J, Xu K. Nanochemistry[J]. Prog Chem, 2000,12(4):431(in Chinese). 薛群基, 徐康. 纳米化学[J]. 化学进展, 2000,12(4):431. 34Wang X Y, Chen Y Z. Application of nanomaterials in lubrication technique[J]. Chem Ind Eng Prog, 2001,20(2):27(in Chinese). 王晓勇, 陈月珠. 纳米材料在润滑技术中的应用[J]. 化工进展, 2001,20(2):27. 35Wen Z Z, Xia Y Q, Feng X, et al. Preparation and tribological properties of the overbased calcium sulfonate-titanium complex grease[J]. Tribology, 2013,33(3):209(in Chinese). 闻振中, 夏延秋, 冯欣,等. 高碱值复合磺酸钙-钛基脂的制备及其摩擦学性能研究[J]. 摩擦学学报, 2013,33(3):209. 36Du D C, Dong J X, Yan Y N, et al. On tribological behavior of titanium (Ⅳ) dialkyldithiophosphate and its functional mechanisim[J]. Petroleum Processing Petrochem, 1995(2):62(in Chinese). 杜大昌, 董浚修, 严永年, 等. 二烷基二硫代磷酸钛(Ⅳ)的抗磨性及机理研究[J]. 石油炼制与化工, 1995(2):62. 37Ilie F, Covaliu C, Chisiu G. Tribological study of ecological lubricants containing titanium dioxide nanoparticles[J]. Appl Mech Mater, 2014,658(S):323. 38Oganesova E Y, Kuz’Mina G N, Bordubanova E G, et al. Comparison of antiwear properties of titanium-containing compounds[J]. Petroleum Chem, 2012,52(3):204. 39Cohen S R, Feldman Y, Cohen H, et al. Nanotribology of novel metal dichalcogenides[J]. Appl Surf Sci, 1999,144-145(4):603. 40Rapoport L, Feldman Y, Homyonfer M, et al. Inorganic fullerene-like material as additives to lubricants: Structure-function relationship[J]. Wear, 1999,225:915. 41Fang J H, Chen B S, et al. Tribological mechanisms of nanopraticals as antiwear and friction reducing additives of lubricating oil[J]. Synth Lubricants, 2001,28(2):15(in Chinese). 方建华, 陈波水,等. 纳米润滑添加剂的抗磨减摩机理[J]. 合成润滑材料, 2001,28(2):15. 42Xue Q, Liu W, Zhang Z. Friction and wear properties of a surface-modified TiO2nanoparticle as an additive in liquid paraffin[J]. Wear, 1997,213(1-2):29. 43Homola A M, Israelachvili J N, Gee M L, et al. Measurements of and relation between the adhesion and friction of two surfaces separated by molecularly thin liquid films[J]. J Tribol, 1989,111(4):675. 44Hu Z S, Dong J X. Study on antiwear and reducing friction additive of nanometer titanium oxide[J]. Wear, 1998,216(1):92. 45Kecheng G, Boshui C, Yong C. Preparation and tribological properties of lanthanum-doped TiO2 nanoparticles in rapeseed oil[J]. J Rare Earths, 2013,31(6):589. 46Gu K, Chen B, Wang X, et al. Preparation, friction, and wear behaviors of cerium-doped anatase nanophases in rapeseed oil[J]. Ind Eng Chem Res, 2014,53(15):6249. 47Chao W L, Wan Y, Wang Y X, et al. Tribological properties of Cu-doped TiO2films[J]. Acta Physico-Chimica Sin, 2010,26(8):2317(in Chinese). 晁闻柳, 万勇, 王云霞,等. Cu掺杂TiO2薄膜的摩擦学性能[J]. 物理化学学报, 2010,26(8):2317. 48Jia Q Y, Zhang Y J, Wu S Z, et al. Influence of Ag dopants on structure and tribological properties of nano structured TiO2film[J]. Lubrication Eng, 2006(7):139(in Chinese). 贾庆远, 张玉娟, 吴志申,等. Ag掺杂对TiO2纳米薄膜结构及摩擦学性能的影响[J]. 润滑与密封, 2006(7):139. |
|
|
|