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Tribological Properties of WS2 Hexagonal Nanoplates Nanoflowers

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Tribological Properties of WS2 Hexagonal Nanoplates Nanoflowers ( tribological-properties-ws2-hexagonal-nanoplates-nanoflowers )

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Nanomaterials 2019, 9, 840 10 of 10 24. Liu, Z.; Li, N.; Su, C.; Zhao, H.; Xu, L.; Yin, Z.; Li, J.; Du, Y. Colloidal synthesis of 1T’phase dominated WS2 towards endurable electrocatalysis. Nano Energy 2018, 50, 176–181. [CrossRef] 25. Roy, S.; Bermel, P. Electronic and optical properties of ultra-thin 2D tungsten disulfide for photovoltaic applications. Sol. Energ. Mat. Sol. C 2018, 174, 370–379. [CrossRef] 26. Huang, S.; Wang, Y.; Hu, J.; Lim, Y.V.; Kong, D.; Zheng, Y.; Ding, M.; Pam, M.E.; Yang, H.Y. Mechanism Investigation of High-Performance Li–Polysulfide Batteries Enabled by Tungsten Disulfide Nanopetals. ACS Nano 2018, 12, 9504–9512. [CrossRef] [PubMed] 27. Ren, J.; Wang, Z.; Yang, F.; Ren, R.P.; Lv, Y.K. Freestanding 3D single-wall carbon nanotubes/WS2 nanosheets foams as ultra-long-life anodes for rechargeable lithium ion batteries. Electrochim. Acta 2018, 267, 133–140. [CrossRef] 28. Shang, X.; Chi, J.Q.; Lu, S.S.; Dong, B.; Li, X.; Liu, Y.R.; Yan, K.L.; Gao, W.K.; Chai, Y.M.; Liu, C.G. Novel CoxSy/WS2 nanosheets supported on carbon cloth as efficient electrocatalyst for hydrogen evolution reaction. Int. J. Hydrog. Energy 2017, 42, 4165–4173. [CrossRef] 29. Hu, K.H.; Wang, J.; Schraube, S.; Xu, Y.F.; Hu, X.G.; Stengler, R. Tribological properties of MoS2 nano-balls as filler in polyoxymethylene-based composite layer of three-layer self-lubrication bearing materials. Wear 2009, 266, 1198–1207. [CrossRef] 30. Wu, J.; Zhai, W.S.; Jie, G.F. Preparation and tribological properties of tungsten disulfide hollow spheres assisted by methyltrioctylammonium chloride. Tribol. Int. 2010, 43, 1650–1658. 31. Lu, Z.; Cao, Z.; Hu, E.; Hu, K.; Hu, X. Preparation and tribological properties of WS2 and WS2/TiO2 nanoparticles. Tribol. Int. 2019, 130, 308–316. [CrossRef] 32. Xu, Z.Y.; Hu, K.H.; Han, C.L.; Hu, X.G.; Xu, Y.F. Morphological influence of molybdenum disulfide on the tribological properties of rapeseed oil. Tribol. Lett. 2013, 49, 513–524. [CrossRef] 33. Rabaso, P.; Ville, F.; Dassenoy, F.; Diaby, M.; Afanasiev, P.; Cavoret, J.; Vacher, B.; Le Mogne, T. Boundary lubrication: Influence of the size and structure of inorganic fullerene-like MoS2 nanoparticles on friction and wear reduction. Wear 2014, 320, 161–178. [CrossRef] 34. Zhang, X.; Lei, W.; Ye, X.; Wang, C.; Lin, B.; Tang, H.; Li, C. A facile synthesis and characterization of graphene-like WS2 nanosheets. Mater. Lett. 2015, 159, 399–402. [CrossRef] 35. Vattikuti, S.P.; Byon, C.; Chitturi, V. Selective hydrothermally synthesis of hexagonal WS2 platelets and their photocatalytic performance under visible light irradiation. Superlattice Microst. 2016, 94, 39–50. [CrossRef] 36. Pang, Q.; Gao, Y.; Zhao, Y.; Ju, Y.; Qiu, H.; Wei, Y.; Chen, G. Improved Lithium-Ion and Sodium-Ion Storage Properties from Few-Layered WS2 Nanosheets Embedded in a Mesoporous CMK-3 Matrix. Chem. Eur. J. 2017, 23, 7074–7080. [CrossRef] [PubMed] 37. Wu, Z.; Fang, B.; Bonakdarpour, A.; Sun, A.; Wilkinson, D.P.; Wang, D. WS2 nanosheets as a highly efficient electrocatalyst for hydrogen evolution reaction. Appl. Catal. B-Environ. 2012, 125, 59–66. [CrossRef] 38. Zhang, X.; Xu, H.; Wang, J.; Ye, X.; Lei, W.; Xue, M.; Li, C. Synthesis of Ultrathin WS2 Nanosheets and Their Tribological Properties as Lubricant Additives. Nanoscale Res. Let. 2016, 11, 442. [CrossRef] [PubMed] © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).

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