Binary and ternary lubricious oxides for high temperature tribological applications: A review
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C. Moreau | R. Chromik | A. Roy | P. Stoyanov | N. Sharifi | Payank Patel | Amit Roy
[1] C. Moreau,et al. Microstructural evolution and tribological behavior of suspension plasma sprayed CuO as high-temperature lubricious coatings , 2023, Wear.
[2] C. Moreau,et al. Friction and wear behavior of suspension plasma sprayed tantalum oxide coatings at elevated temperatures , 2022, Surface and Coatings Technology.
[3] C. Moreau,et al. Room and elevated temperature sliding wear of high velocity oxy-fuel sprayed Diamalloy3001 coatings , 2022, Tribology International.
[4] C. Moreau,et al. Microstructure and mechanical properties of Tribaloy coatings deposited by high-velocity oxygen fuel , 2022, Journal of Materials Science.
[5] C. Moreau,et al. Tribological Performance of High-Entropy Coatings (HECs): A Review , 2022, Materials.
[6] C. Moreau,et al. Microstructural and Tribological Behavior of Thermal Spray CrMnFeCoNi High Entropy Alloy Coatings , 2022, Journal of Thermal Spray Technology.
[7] P. Stoyanov,et al. Tribological Characteristics of Manufactured Carbon Under Extreme Contact Conditions , 2021, Tribology in Industry.
[8] P. Stoyanov,et al. Tribological insights of Co- and Ni-based alloys in extreme conditions , 2021, Wear.
[9] A. Ignatov,et al. Tribological characteristics of Co-based plasma sprayed coating in extreme conditions , 2021 .
[10] C. Moreau,et al. An investigation on the photocatalytic activity of sub-stoichiometric TiO2-x coatings produced by suspension plasma spray , 2021 .
[11] A. P. Tschiptschin,et al. Deposition and characterization of molybdenum oxide (MoO3) nanoparticles incorporated diamond-like carbon coatings using pulsed-DC PECVD , 2020 .
[12] Cheng Lu,et al. High temperature tribological behaviors and wear mechanisms of NiAl-MoO3/CuO composite coatings , 2020 .
[13] Zhaobing Cai,et al. Insights into friction properties and mechanism of self-lubricating MoVN–Ag films at high temperature , 2020, Vacuum.
[14] Yue Zhao,et al. Effect of MoO3 on the microstructure and tribological properties of laser-clad Ni60/nanoCu/h-BN/MoO3 composite coatings over wide temperature range , 2020 .
[15] X. Dai,et al. The tribological performance at elevated temperatures of MoNbN-Ag coatings , 2020 .
[16] Yonggang Meng,et al. A review of recent advances in tribology , 2020 .
[17] F. Gong,et al. Microstructure, wear and oxidation resistance of CrWN glass molding coatings synthesized by plasma enhanced magnetron sputtering , 2020 .
[18] P. Stoyanov,et al. Insights into the Tribological Characteristic of Cu-Based Coatings Under Extreme Contact Conditions , 2020 .
[19] Zhi-shui Yu,et al. Microstructure and wide temperature range self-lubricating properties of laser cladding NiCrAlY/Ag2O/Ta2O5 composite coating , 2020, Surface and Coatings Technology.
[20] Ming Liu,et al. Mechanical properties and friction−wear characteristics of VN/Ag multilayer coatings with heterogeneous and transition interfaces , 2020 .
[21] F. Liu,et al. High-Temperature Tribological Performance of Vacuum Hot-Pressed NiCr Matrix Composite Containing SrAl12O19 , 2020, Journal of Materials Engineering and Performance.
[22] Cheng Lu,et al. High temperature tribological behaviors and wear mechanisms of NiAl–NbC–Ag composites formed by in-situ decomposition of AgNbO3 , 2020, Tribology International.
[23] H. Hirani,et al. Tribological Property Investigation of Self-Lubricating Molybdenum-Based Zirconia Ceramic Composite Operational at Elevated Temperature , 2020 .
[24] Huiqiang Liu,et al. Microstructure and High-Temperature Wear Performance of FeCr Matrix Self-Lubricating Composites from Room Temperature to 800 °C , 2019, Materials.
[25] E. Xie,et al. Influence of Mo contents on the tribological properties of CrMoN/MoS2 coatings at 25–700 °C , 2019, Surface & Coatings Technology.
[26] H. Ju,et al. Tribological Properties of Mo2N Films at Elevated Temperature , 2019, Coatings.
[27] M. Wong,et al. Processing, structure and properties of reactively sputtered films of titanium dioxide and suboxides , 2019, Thin Solid Films.
[28] E. Xie,et al. Effect of substrate temperatures on the properties of PLD Mo–V–Ag–O nanocomposite thin films , 2019, Vacuum.
[29] Qiaoxin Zhang,et al. Tribological Behavior of Ni-based Self-lubricating Composites with the Addition of Ti3SiC2 and Ag2W2O7 , 2019, Journal of Wuhan University of Technology-Mater. Sci. Ed..
[30] P. Sahoo,et al. TRIBOLOGICAL CHARACTERISTICS OF ELECTROLESS Ni–B–Mo COATINGS AT DIFFERENT OPERATING TEMPERATURES , 2019, Surface Review and Letters.
[31] T. Durejko,et al. The Tribaloy T-800 Coatings Deposited by Laser Engineered Net Shaping (LENSTM) , 2019, Materials.
[32] S. Aouadi,et al. Tribologically enhanced self-healing of niobium oxide surfaces , 2019, Surface and Coatings Technology.
[33] S. Haviar,et al. Tribological properties and oxidation resistance of tungsten and tungsten nitride films at temperatures up to 500 °C , 2019, Tribology International.
[34] Peng Wang,et al. Structure, Mechanical and Tribological Properties of MoSN/MoS2 Multilayer Films , 2019, Coatings.
[35] T. Zhang,et al. Influence of lubricious oxides formation on the tribological behavior of Mo-V-Cu-N coatings deposited by HIPIMS , 2019, Surface and Coatings Technology.
[36] T. Polcar,et al. Structure, mechanical and tribological properties of Mo-S-N solid lubricant coatings , 2011, Applied Surface Science.
[37] A. Barylski,et al. Characteristics of the tribological properties of oxide layers obtained via thermal oxidation on titanium Grade 2 , 2019 .
[38] N. Mandal,et al. Tribological Influences of CuO Into 3Y-TZP Ceramic Composite in Conformal Contact , 2018, Journal of Tribology.
[39] I. Shchetinin,et al. Temperature-dependent structural transformation and friction behavior of nanocomposite VCN-(Ag) coatings , 2018, Materials & Design.
[40] Wen-zhi Chen,et al. High temperature friction and wear behavior of tungsten – copper alloys , 2018, International Journal of Refractory Metals and Hard Materials.
[41] Jian Peng,et al. Isothermal oxidation behavior of TribaloyTM T400 and T800 , 2018, npj Materials Degradation.
[42] D. Xiong,et al. Friction and wear properties of amorphous and nanocrystalline Ta-Ag films at elevated temperatures as function of working pressure , 2018, Surface and Coatings Technology.
[43] J. Jia,et al. Comparison of microstructures and properties of VN and VN/Ag nanocomposite films fabricated by pulsed laser deposition , 2018, Applied Physics A.
[44] Cheng Lu,et al. Mechanical and tribological properties of plasma sprayed NiAl composite coatings with addition of nanostructured TiO2/Bi2O3 , 2018, Surface and Coatings Technology.
[45] M. R. Sankar,et al. Environmental friendly hard machining performance of uncoated and MoS 2 coated mechanical micro-textured tungsten carbide cutting tools , 2018, Tribology International.
[46] Fanming Meng,et al. Study on tribological performances of MoS2 coating at high temperature , 2018 .
[47] B. Prakash,et al. High-temperature sliding wear behaviour of Stellite®12 and Tribaloy®T400 , 2018 .
[48] D. Goberman,et al. Friction and Wear Characteristics of Single Crystal Ni-Based Superalloys at Elevated Temperatures , 2018, Tribology Letters.
[49] H. Ju,et al. Structural, Mechanical and Tribological Properties of NbCN-Ag Nanocomposite Films Deposited by Reactive Magnetron Sputtering , 2018 .
[50] I. Shchetinin,et al. Microstructure, mechanical, and tribological properties of Ag-free and Ag-doped VCN coatings , 2017 .
[51] G. Kermouche,et al. Brittle to ductile transition of tribomaterial in relation to wear response at high temperatures , 2017 .
[52] X. He,et al. The microstructure and tribological properties at elevated temperatures of tungsten silicon nitride films , 2017 .
[53] J. Gu,et al. Precipitation-induced healing of Nb2O5 , 2017 .
[54] Weitao Zheng,et al. Toughness enhancement and tribochemistry of the Nb-Ag-N films actuated by solute Ag , 2017 .
[55] J. Jia,et al. Microstructure and tribological properties of NiCrAlY-Mo-Ag composite by vacuum hot-press sintering , 2017 .
[56] Xiao-bing Li,et al. Tribological Properties of Spark Plasma Sintering TZ3Y20A–SrMoO4 Composites at Elevated Temperature , 2017, Tribology Letters.
[57] S. Ulrich,et al. Microstructure, mechanical properties and friction behavior of magnetron-sputtered V-C coatings , 2017 .
[58] J. Jia,et al. Mechanical and tribological properties of NiAl–NbC–Ag composites prepared by hot-pressing sintering , 2017 .
[59] S. Fouvry,et al. Fretting wear of pure cobalt chromium and nickel to identify the distinct roles of HS25 alloying elements in high temperature glaze layer formation , 2017 .
[60] C. Dellacorte,et al. The Performance of PS400 Subjected to Sliding Contact at Temperatures from 260 to 927°C , 2017 .
[61] Jiansong Zhou,et al. Effect of copper molybdate on the lubricating properties of NiCrAlY laser clad coating at elevated temperatures , 2017 .
[62] J. Jia,et al. Microstructure and properties of VN/Ag composite films with various silver content , 2017 .
[63] H. Ju,et al. Influence of Cu content on the structure, mechanical and tribological properties of W2N-Cu films , 2017 .
[64] H. Czichos,et al. Introduction to tribology and tribological parameters , 2017 .
[65] S. Fouvry,et al. Nanocrystalline glaze layer in ceramic-metallic interface under fretting wear , 2016 .
[66] Jiansong Zhou,et al. Effect of silver vanadate on the lubricating properties of NiCrAlY laser cladding coating at elevated temperatures , 2016 .
[67] J. Jia,et al. Influence of heat treatments on the microstructure as well as mechanical and tribological properties of NiCrAlY-Mo-Ag coatings , 2016 .
[68] Wei-min Liu,et al. Microstructure and high temperature tribological behavior of Fe3Al–Ba0.25Sr0.75SO4 self-lubricating composites , 2016 .
[69] W. Zhang,et al. Tribological and oxidation behaviors of the plasma sprayed NiCoCrAlY-Cr2O3-AgVO3 coating , 2016 .
[70] Yuan Tian,et al. High Temperature Lubricating Behavior of NiAl Matrix Composites With Addition of CuO , 2016 .
[71] Ming Liu,et al. PVD multilayer VN–VN/Ag composite coating with adaptive lubricious behavior from 25 to 700 °C , 2016 .
[72] Ming Liu,et al. Carbon doping to improve the high temperature tribological properties of VN coating , 2016 .
[73] H. Ju,et al. Microstructure and tribological properties of NbN-Ag composite films by reactive magnetron sputtering , 2015 .
[74] F. Musharavati,et al. Wear resistance investigation of titanium nitride-based coatings , 2015 .
[75] Bo Li,et al. Friction and Wear Characteristics of Hot-Pressed NiCr–Mo/MoO3/Ag Self-Lubrication Composites at Elevated Temperatures up to 900 °C , 2015, Tribology Letters.
[76] Weigang Zhang,et al. Tribological properties and lubrication mechanisms of a Ag–Mo composite , 2015 .
[77] A. Otero-de-la-Roza,et al. (Ag,Cu)-Ta-O ternaries as high-temperature solid-lubricant coatings. , 2015, ACS applied materials & interfaces.
[78] S. Hannula,et al. Friction behavior of alumina/molybdenum composites and formation of MoO3−x phase at 400 °C , 2015 .
[79] A. Brodyanski,et al. On the Role of Oxidation in Tribological Contacts under Environmental Conditions , 2015 .
[80] H. Attia,et al. Characterization of fretting wear of cobalt-based superalloys at high temperature for aero-engine combustor components , 2015 .
[81] C. V. Robino,et al. Elevated temperature tribology of cobalt and tantalum-based alloys , 2015 .
[82] Chengjian Shi,et al. Fabrication and high-temperature tribological properties of self-lubricating NiCr–BaMoO4 composites , 2015 .
[83] M. Kawamura,et al. Tribological Properties of Copper Molybdate Powder Solid Lubricants under High Temperature Conditions , 2015 .
[84] Wei-min Liu,et al. Tribological properties of Ni3Al matrix composites with addition of silver and barium salt , 2015 .
[85] M. Sebastiani,et al. Structural, morphological and mechanical characterization of Mo sputtered coatings , 2015 .
[86] M. Moseler,et al. Surface softening in metal-ceramic sliding contacts: an experimental and numerical investigation. , 2015, ACS nano.
[87] K. V. Ezirmik,et al. Influence of Cu additions on the mechanical and wear properties of NbN coatings , 2014 .
[88] J. Jia,et al. Tribological properties of NiAl-based composites containing Ag3VO4 nanoparticles at elevated temperatures , 2014 .
[89] Hui-di Zhou,et al. Microstructure and tribological property of HVOF-sprayed adaptive NiMoAl–Cr3C2–Ag composite coating from 20 °C to 800 °C , 2014 .
[90] D. Stone,et al. Reconstruction mechanisms of tantalum oxide coatings with low concentrations of silver for high temperature tribological applications. , 2014, Applied physics letters.
[91] J. Jia,et al. Tribological properties of self-lubricating NiAl/Mo-based composites containing AgVO3 nanowires , 2014 .
[92] A. Martini,et al. Lubricious oxide coatings for extreme temperature applications: A review , 2014 .
[93] C. Muratore,et al. Hard coatings with high temperature adaptive lubrication and contact thermal management: review , 2014 .
[94] Daniele Botto,et al. High temperature tribological study of cobalt-based coatings reinforced with different percentages of alumina , 2014 .
[95] Shengyu Zhu,et al. Effect of Mo and Ag on the friction and wear behavior of ZrO2 (Y2O3)–Ag–CaF2–Mo composites from 20 °C to 1000 °C , 2014 .
[96] Junhua Xu,et al. Mechanical, tribological and corrosion performance of WBN composite films deposited by reactive magnetron sputtering , 2014 .
[97] A. Otero-de-la-Roza,et al. Chemical Basis of the Tribological Properties of AgTaO3 Crystal Surfaces , 2014 .
[98] Wei-min Liu,et al. Effect of CuO on self-lubricating properties of ZrO2(Y2O3)-Mo composites at high temperatures , 2014 .
[99] D. Jaeger,et al. Load-dependent high temperature tribological properties of silver tantalate coatings , 2014 .
[100] M. Gardon,et al. Milestones in Functional Titanium Dioxide Thermal Spray Coatings: A Review , 2014, Journal of Thermal Spray Technology.
[101] Hui-di Zhou,et al. Tribological properties of adaptive NiCrAlY–Ag–Mo coatings prepared by atmospheric plasma spraying , 2013 .
[102] Feng Liu,et al. Tribological properties of NiCr–Al2O3 cermet-based composites with addition of multiple-lubricants at elevated temperatures , 2013 .
[103] S. Jacobson,et al. Ultra-low friction W–S–N solid lubricant coating , 2013 .
[104] C. Mitterer,et al. Vanadium containing self-adaptive low-friction hard coatings for high-temperature applications: A review , 2013 .
[105] Weigang Zhang,et al. Wear behavior of a NiCr/AgVO3 self-lubricating composite , 2013, Acta Metallurgica Sinica (English Letters).
[106] M. Scherge,et al. Friction and wear mechanisms of tungsten-carbon systems: a comparison of dry and lubricated conditions. , 2013, ACS applied materials & interfaces.
[107] L. Jaworska,et al. Al2O3–Mo cutting tools for machining hardened stainless steel , 2013 .
[108] P. Kiryukhantsev-Korneev,et al. Structure and tribological properties of MoCN-Ag coatings in the temperature range of 25–700 °C , 2013 .
[109] J. Ouyang,et al. Friction and wear properties of hot-pressed NiCr–BaCr2O4 high temperature self-lubricating composites , 2013 .
[110] D. Stone,et al. Mechanistic studies of high temperature friction reduction in silver tantalate , 2013 .
[111] J. Jia,et al. Effect of Ag2Mo2O7 Incorporation on the Tribological Characteristics of Adaptive Ni-Based Composite at Elevated Temperatures , 2013 .
[112] Ashlie Martini,et al. Lubricious silver tantalate films for extreme temperature applications , 2013 .
[113] Shangguo Wan. Solid Lubricant: Soft Metal , 2013 .
[114] P. Stoyanov. Microtribological performance of Au-MoS_2 nanocomposite and Au/MoS_2 bilayer coatings , 2012 .
[115] Ashlie Martini,et al. Adaptive NbN/Ag coatings for high temperature tribological applications , 2012 .
[116] J. Ouyang,et al. Friction and Wear Characteristics of BaCr2O4 Ceramics at Elevated Temperatures in Sliding Against Sintered Alumina Ball , 2012, Tribology Letters.
[117] J. Jia,et al. Tribological Properties of Adaptive Ni-Based Composites with Addition of Lubricious Ag2MoO4 at Elevated Temperatures , 2012, Tribology Letters.
[118] Litian Hu,et al. High-temperature self-lubricated properties of Al2O3/Mo laminated composites , 2012 .
[119] T. Polcar,et al. Examination of the tribolayer formation of a self-lubricant W–S–C sputtered coating , 2012 .
[120] Wei-min Liu,et al. Barium Chromate as a Solid Lubricant for Nickel Aluminum , 2012 .
[121] Wei-min Liu,et al. Tribological behavior of NiAl matrix composites with addition of oxides at high temperatures , 2012 .
[122] R. Chromik,et al. Scaling effects between micro- and macro-tribology for a Ti–MoS2 coating , 2012 .
[123] Feng Liu,et al. Tribological Properties and Wear Mechanisms of NiCr–Al2O3–SrSO4–Ag Self-Lubricating Composites at Elevated Temperatures , 2012, Tribology Letters.
[124] S. Sasaki,et al. Tribological Properties of Spark-Plasma-Sintered ZrO2(Y2O3)–Al2O3–BaxSr1−xSO4 (x = 0.25, 0.5, 0.75) Composites at Elevated Temperature , 2012, Tribology Letters.
[125] Wei-min Liu,et al. Ni3Al Matrix Composite with Lubricious Tungstate at High Temperatures , 2012, Tribology Letters.
[126] Samir Aouadi,et al. Textured VN coatings with Ag3VO4 solid lubricant reservoirs , 2011 .
[127] L. Winnubst,et al. High-Temperature Tribological and Self-Lubricating Behavior of Copper Oxide-Doped Y-TZP Composite Sliding Against Alumina , 2011 .
[128] D. Luo,et al. A systematic approach for the selection of tribological coatings , 2011 .
[129] C. Muratore,et al. In situ Raman Spectroscopy for Examination of High Temperature Tribological Processes , 2011 .
[130] S. Beke. A review of the growth of V2O5 films from 1885 to 2010 , 2011 .
[131] F. Lofaj,et al. Tribological properties of TiB x and WC/C coatings , 2011 .
[132] Bruce M. Steinetz,et al. Gas Turbine Engines: Seals , 2010 .
[133] Werner Österle,et al. On the role of copper in brake friction materials , 2010 .
[134] Andrey A. Voevodin,et al. Adaptive VN/Ag nanocomposite coatings with lubricious behavior from 25 to 1000 °C , 2010 .
[135] K. Polychronopoulou,et al. Room temperature synthesis and high temperature frictional study of silver vanadate nanorods , 2010, Nanotechnology.
[136] J. R. Lince,et al. Microtribological Performance of Au–MoS2 and Ti–MoS2 Coatings with Varying Contact Pressure , 2010 .
[137] P. Blau. Elevated-temperature tribology of metallic materials , 2010 .
[138] Dinesh Singh,et al. Layered Atomic Structures of Double Oxides for Low Shear Strength at High Temperatures , 2010 .
[139] Yu Zhou,et al. Influences of SrSO4 and Ag on High Temperature Tribological Properties of Spark-Plasma-Sintered ZrO2(Y2O3)-Al2O3 Composites , 2010 .
[140] Andrey A. Voevodin,et al. Progress in the Development of Adaptive Nitride-Based Coatings for High Temperature Tribological Applications , 2009 .
[141] L. Winnubst,et al. Dry-sliding self-lubricating ceramics: CuO doped 3Y-TZP , 2009 .
[142] S. Sasaki,et al. Microstructure and tribological properties of ZrO2(Y2O3) matrix composites doped with different solid lubricants from room temperature to 800 °C , 2009 .
[143] C. Muratore,et al. Chameleon Coatings: Adaptive Surfaces to Reduce Friction and Wear in Extreme Environments , 2009 .
[144] M. Woydt,et al. Dry sliding up to 7.5 m/s and 800 °C of thermally sprayed coatings of the TiO2–Cr2O3 system and (Ti,Mo)(C,N)–Ni(Co) , 2009 .
[145] Qingfeng Ge,et al. Tribological investigation of adaptive Mo2N/MoS2/Ag coatings with high sulfur content , 2009 .
[146] T. Polcar,et al. Comparative study of the tribological behavior of self-lubricating W-S-C and Mo-Se-C sputtered coatings , 2009 .
[147] T. Polcar,et al. Structural and tribological characterization of tungsten nitride coatings at elevated temperature , 2008 .
[148] G. A. Fontalvo,et al. Tribological Properties of Reactive Magnetron Sputtered V2O5 and VN–V2O5 Coatings , 2008 .
[149] Brandon Luster,et al. Adaptive Mo2N/MoS2/Ag Tribological Nanocomposite Coatings for Aerospace Applications , 2008 .
[150] Yu Zhou,et al. High Temperature Tribology and Solid Lubrication of Advanced Ceramics , 2008 .
[151] Shinya Sasaki,et al. High-temperature tribological properties of a cathodic arc ion-plated (V,Ti)N coating , 2007 .
[152] G. Gassner,et al. The Beneficial Effect of High-Temperature Oxidation on the Tribological Behaviour of V and VN Coatings , 2007 .
[153] G. Jin,et al. Tribological properties of molybdenum coatings sprayed by electro-thermal explosion directional spraying , 2007 .
[154] C. Mitterer,et al. Influence of high-temperature oxide formation on the tribological behaviour of TiN and VN coatings , 2007 .
[155] C. Muratore,et al. Silver Diffusion and High-Temperature Lubrication Mechanisms of YSZ–Ag–Mo Based Nanocomposite Coatings , 2007 .
[156] T. Polcar,et al. Tribological characterization of tungsten nitride coatings deposited by reactive magnetron sputtering , 2007 .
[157] I. Piwoński. Preparation method and some tribological properties of porous titanium dioxide layers , 2007 .
[158] S. Sasaki,et al. High-temperature tribological properties of spark-plasma-sintered Al2O3 composites containing barite-type structure sulfates , 2007 .
[159] K. Komai,et al. Tribofilm formation and mild wear by tribo-sintering of nanometer-sized oxide particles on rubbing steel surfaces , 2007 .
[160] C. Muratore,et al. Molybdenum disulfide as a lubricant and catalyst in adaptive nanocomposite coatings , 2006 .
[161] G. Gassner,et al. Magnéli phase formation of PVD Mo–N and W–N coatings , 2006 .
[162] S. Sasaki,et al. High-temperature tribological properties of strontium sulfate films formed on zirconia-alumina, alumina and silicon nitride substrates , 2006 .
[163] C. Muratore,et al. Multilayered YSZ–Ag–Mo/TiN adaptive tribological nanocomposite coatings , 2006 .
[164] C. Muratore,et al. Tribology of adaptive nanocomposite yttria-stabilized zirconia coatings containing silver and molybdenum from 25 to 700 °C , 2006 .
[165] T. Suszko,et al. Thin films of MoO3–Ag2 O binary oxides – the high temperature lubricants , 2006 .
[166] T. Suszko,et al. Thin films of Mo2N/Ag nanocomposite—the structure, mechanical and tribological properties , 2006 .
[167] S. Sasaki,et al. High-temperature friction properties of BaSO4 and SrSO4 powder films formed on Al2O3 and stainless steel substrates , 2006 .
[168] T. Suszko,et al. Mo2N/Cu thin films — the structure, mechanical and tribological properties , 2006 .
[169] Peter Polcik,et al. Influence of oxide phase formation on the tribological behaviour of Ti-Al-V-N coatings , 2005 .
[170] A. Erdemir. A crystal chemical approach to the formulation of self-lubricating nanocomposite coatings , 2005 .
[171] Yong Sun,et al. Effect of thermal oxidation conditions on tribological behaviour of titanium films on 316L stainless steel , 2005 .
[172] D. Schipper,et al. Environmental effects on friction and wear of dry sliding zirconia and alumina ceramics doped with copper oxide , 2005 .
[173] J. Jagielski,et al. The role of surface oxidation in friction processes on molybdenum nitride thin films , 2005 .
[174] S. Sasaki,et al. Tribological properties of spark-plasma-sintered ZrO2(Y2O3)–CaF2–Ag composites at elevated temperatures , 2005 .
[175] A. Voevodin,et al. Nanocomposite and nanostructured tribological materials for space applications , 2005 .
[176] S. Sasaki,et al. Spark-plasma-sintered ZrO2(Y2O3)-BaCrO4 self-lubricating composites for high temperature tribological applications , 2005 .
[177] C. Mitterer,et al. A New Low Friction Concept for High Temperatures: Lubricious Oxide Formation on Sputtered VN Coatings , 2004 .
[178] J. Celis,et al. The Lubricity of Oxides Revised Based on a Polarisability Approach , 2004 .
[179] S. Sasaki,et al. High-Temperature Tribological Properties of Al2O3-X (X: BaCrO4, BaSO4 and CaSO4) Spark-Plasma-Sintered Composites Containing Sintering Additives , 2004 .
[180] Edward P. Becker,et al. Trends in tribological materials and engine technology , 2004 .
[181] Qiaoqin Yang,et al. Sliding wear behavior and tribofilm formation of ceramics at high temperatures , 2004 .
[182] M. Ürgen,et al. Characterization of Mo2N/Ag Nanocomposite Coatings Produced by Magnetron Sputtering , 2004 .
[183] Christian Mitterer,et al. Calorimetric evidence for frictional self-adaptation of TiAlN/VN superlattice coatings , 2004 .
[184] M. Ürgen,et al. Oxidation behavior of molybdenum nitride coatings , 2003 .
[185] D. Schipper,et al. Friction reduction by adding copper oxide into alumina and zirconia ceramics , 2003 .
[186] A. Kasahara,et al. Lubricative coatings of copper oxide for aerospace applications , 2003 .
[187] S. Deevi,et al. Single layer and multilayer wear resistant coatings of (Ti,Al)N: a review , 2003 .
[188] D. Lim,et al. Microstructure and tribological properties of plasma-sprayed chromium oxide-molybdenum oxide composite coatings , 2003 .
[189] T. Suszko,et al. Tribological properties of silver- and copper-doped transition metal oxide coatings , 2003 .
[190] Peter Panjan,et al. Interface characterization of combination hard/solid lubricant coatings by specific methods , 2002 .
[191] S. Sasaki,et al. The friction and wear characteristics of low-pressure plasma-sprayed ZrO2-BaCrO4 composite coating at elevated temperatures , 2002 .
[192] Takayuki Komatsu,et al. Classification of Simple Oxides: A Polarizability Approach , 2002 .
[193] K. Bobzin,et al. Characteristic curves of voltage and current, phase generation and properties of tungsten- and vanadium-oxides deposited by reactive d.c.-MSIP-PVD-process for self-lubricating applications , 2001 .
[194] S. Sasaki,et al. Microstructure and tribological properties of low-pressure plasma-sprayed ZrO2–CaF2–Ag2O composite coating at elevated temperature , 2001 .
[195] A. Erdemir. Solid Lubricants and Self-Lubricating Films , 2001 .
[196] S. K. Biswas. Some mechanisms of tribofilm formation in metal/metal and ceramic/metal sliding interactions , 2000 .
[197] Koji Kato,et al. Wear in relation to friction — a review , 2000 .
[198] M. Gardos. Magnéli phases of anion-deficient rutile as lubricious oxides. Part I. Tribological behavior of single-crystal and polycrystalline rutile (TinO2n−1) , 2000 .
[199] C. Mitterer,et al. Application of hard coatings in aluminium die casting — soldering, erosion and thermal fatigue behaviour , 2000 .
[200] M. Woydt. Tribological characteristics of polycrystalline Magnéli-type titanium dioxides , 2000 .
[201] Somuri V. Prasad,et al. Tribology of tungsten disulfide–nanocrystalline zinc oxide adaptive lubricant films from ambient to 500°C , 2000 .
[202] A. Erdemir. A crystal-chemical approach to lubrication by solid oxides , 2000 .
[203] J. Zabinski,et al. Sulfate based coatings for use as high temperature lubricants , 1999 .
[204] A. Voevodin,et al. Calcium sulfate as a high temperature solid lubricant , 1998 .
[205] E. Wenda. High Temperature Reactions in the MoO3-Ag2O System , 1998 .
[206] M. Woydt,et al. Wear engineering oxides/anti-wear oxides , 1998 .
[207] T. A. Harris,et al. Tribological Performance Prediction of Aircraft Gas Turbine Mainshaft Ball Bearings , 1998 .
[208] J. Zabinski,et al. Characterization of air-annealed, pulsed laser deposited ZnO-WS2 solid film lubricants by transmission electron microscopy , 1997 .
[209] Giri L. Agrawal,et al. Foil Air/Gas Bearing Technology — An Overview , 1997 .
[210] I. L. Singer,et al. Ion-beam deposited Cu-Mo coatings as high temperature solid lubricants , 1997 .
[211] C. Dellacorte,et al. Tribological Evaluation of PS300: A New Chrome Oxide-Based Solid Lubricant Coating Sliding Against Al2O3 from 25° to 650°C© , 1997 .
[212] E. Traversa,et al. Ceramic thin films by sol-gel processing as novel materials for integrated humidity sensors , 1996 .
[213] P. D. Fleischauer,et al. Applications of solid lubricant films in spacecraft , 1992 .
[214] M. Grätzel,et al. A low-cost, high-efficiency solar cell based on dye-sensitized colloidal TiO2 films , 1991, Nature.
[215] J. Hsieh,et al. Sliding Friction and Wear of Ceramics With and Without Soft Metallic Films , 1991 .
[216] I. Allam. Solid lubricants for applications at elevated temperatures , 1991 .
[217] H. Hong,et al. The Effect of Anion Vacancies on the Tribological Properties of Rutile (TiO2-x), Part II: Experimental Evidence , 1990 .
[218] Christopher Dellacorte,et al. Tribological composition optimization of chromium-carbide-based solid lubricant coatings for foil gas bearings at temperatures to 650 °C , 1988 .
[219] M. Gardos. The Effect of Anion Vacancies on the Tribological Properties of Rutile (TiO2–x) , 1988 .
[220] Harold E. Sliney,et al. Solid lubricant materials for high temperatures: A review , 1982 .
[221] H. Sliney. Wide temperature spectrum self-lubricating coatings prepared by plasma spraying , 1979 .
[222] F. H. Stott,et al. Friction and wear properties of Stellite 31 at temperatures from 293 to 1073K , 1977 .
[223] F. Stott,et al. The tribological behaviour of nickel and nickel-chromium alloys at temperatures from 20° to 800 °C , 1976 .
[224] R. D. Schmidt,et al. New materials resistant to wear and corrosion to 1000°C , 1975 .
[225] R. E. Lee,et al. Sliding Characteristics of Metals at High Temperatures , 1960 .
[226] J. Florek,et al. Consideration of Lubricants for Temperatures above 1000 F , 1959 .
[227] A. Magnéli,et al. Structures of the ReO3‐type with recurrent dislocations of atoms: `homologous series' of molybdenum and tungsten oxides , 1953 .