Superhydrophobic Coating Bioinspired on Rice Leaf: A First Attempt to Enhance Erosion Resistance Properties at Environmental Conditions with Ceramic Particles

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This study develops a new, facile and rapid process bioinspired on rice leaf with the aim of producing a hybrid composite coating in a first attempt to obtain a superhydrophobic coating with enhanced erosion resistance properties. Rice leaves (Oryza sativa L.) are made of hierarchical structures consisting of micropapillae and waxy nanobumps which confer to the surface a contact angle of 164° as Lotus leaf does. In particular, rice leaves accumulate amorphous silica inside and on the surface with various morphologies. This kind of silica is produced by absorbing silicates from the soil under specific conditions of temperature and pressure. The presence of biosilica in rice leaves is useful for preventing diseases or improves mechanical properties of the leaves. Single-step and two-step processes are the two strategies applied for generating a superhydrophobic coating by electrochemical deposition of ZnCl2, α-Al2O3 and lauric acid (C11H23COOH) onto commercial pure aluminum substrate. The static contact angle measured on the coating gives values of 170° and 1° for the sliding angle conducing to a coating with superhydrophobic and self-cleaning properties. Various characterization techniques are used to determine chemical and morphological structure such as FESEM, XPS or FTIR. On one hand, in morphological analysis, flower-like structure is obtained with petals thickness of 70nm corresponding to the nanostructured contribution to the system. On the other hand, chemical analysis concludes the generation of zinc laurate (Zn (C11H23COO)2) as a major compound contributing to the reduction of surface tension and increasing the superhydrophobic character of the coating as well.

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1874-1879

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December 2018

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© 2018 Trans Tech Publications Ltd. All Rights Reserved

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[1] B. Bhushan, Y.C. Jung, Natural and biomimetic artificial surfaces for superhydrophobicity, self-cleaning, low adhesion, and drag reduction, Prog. Mater. Sci. 56 (2011) 1–108.

DOI: 10.1016/j.pmatsci.2010.04.003

Google Scholar

[2] G.D. Bixler, B. Bhushan, Rice and butterfly wing effect inspired low drag and antifouling surfaces: A review, Crit. Rev. Solid State Mater. Sci. 40 (2015) 1–37.

DOI: 10.1080/10408436.2014.917368

Google Scholar

[3] K. Sato, N. Ozaki, K. Nakanishi, Y. Sugahara, Y. Oaki, C. Salinas, S. Herrera, D. Kisailus, H. Imai, M.J. Collins, J. Li, H.C. Schröder, J. Aizenberg, Y. Dauphin, D. Kisailus, D.E. Morse, Effects of nanostructured biosilica on rice plant mechanics, RSC Adv. 7 (2017) 13065–13071.

DOI: 10.1039/c6ra27317c

Google Scholar

[4] G. Zhao, J. Li, Y. Huang, L. Yang, Y. Ye, F.C. Walsh, J. Chen, S. Wang, Robust Ni/WC superhydrophobic surfaces by electrodeposition, RSC Adv. 7 (2017) 44896–44903.

DOI: 10.1039/c7ra08535d

Google Scholar

[5] X. Zhang, D. Zhi, L. Sun, Y. Zhao, M.K. Tiwari, C.J. Carmalt, I.P. Parkin, Y. Lu, Super-durable, non-fluorinated superhydrophobic free-standing items, J. Mater. Chem. A. 0 (2017) 1–6.

DOI: 10.1039/c7ta08895g

Google Scholar

[6] J. Brassard, J. Laforte, C. Blackburn, J. Perron, D.K. Sarkar, Silicone based superhydrophobic coating efficient to reduce ice adhesion and accumulation on aluminum under offshore arctic conditions, Ocean Eng. 144 (2017) 135–141.

DOI: 10.1016/j.oceaneng.2017.08.022

Google Scholar

[7] B. Zhang, J. Li, X. Zhao, X. Hu, L. Yang, N. Wang, Y. Li, B. Hou, Biomimetic one step fabrication of manganese stearate superhydrophobic surface as an efficient barrier against marine corrosion and Chlorella vulgaris-induced biofouling, Chem. Eng. J. 306 (2016) 441–451.

DOI: 10.1016/j.cej.2016.07.062

Google Scholar

[8] P. Gautier, A. Vallee, C. Sinito, A. Etcheberry, N. Simon, Effect of growth temperature on the electrodeposition of zinc oxide layers on diamond surfaces, Diam. Relat. Mater. 62 (2016) 1–6.

DOI: 10.1016/j.diamond.2015.12.005

Google Scholar

[9] A.M. Escobar, N. Llorca-Isern, O. Rius-Ayra, Identification of the mechanism that confers superhydrophobicity on 316L stainless steel, Mater. Charact. 111 (2016) 162–169.

DOI: 10.1016/j.matchar.2015.11.026

Google Scholar

[10] M. Gadermann, T.C. Preston, C. Troster, R. Signorell, Characterization of palmitic and lauric acid aerosols from rapid expansion of supercritical CO2 solutions, Mol. Phys. 106 (2008) 945–953.

DOI: 10.1080/00268970802020355

Google Scholar

[11] M.L. Caroline, S. Vasudevan, Growth and characterization of an organic nonlinear optical material-lauric acid crystal, Mater. Res. Express. 62 (2008) 2245–2248.

DOI: 10.1016/j.matlet.2007.11.059

Google Scholar

[12] L. Jiesheng, Y. Yuanyuan, H. Xiang, Research on the preparation and properties of lauric acid/expanded perlite phase change materials, Energy Build. 110 (2016) 108–111.

DOI: 10.1016/j.enbuild.2015.10.043

Google Scholar

[13] K. Rajeswari, K. Pandiarajan, Powder X-ray diffraction, infrared and 13C NMR spectroscopic studies of the homologous series of some solid-state zinc(II) and sodium(I) n-alkanoates, Spectrochim. Acta Part A Mol. Biomol. Spectrosc. 78 (2010) 1110–1118.

DOI: 10.1016/j.saa.2014.11.010

Google Scholar

[14] M. Estruga, C. Domingo, J.A. Ayllón, Solution-processable ZnO nanoparticles obtained by low-temperature solventless synthesis, J. Mater. Chem. 21 (2011) 4408.

DOI: 10.1039/c0jm03812a

Google Scholar

[15] J.J. Hermans, K. Keune, A. van Loon, P.D. Iedema, An infrared spectroscopic study of the nature of zinc carboxylates in oil paintings, J. Anal. At. Spectrom. 30 (2015) 1600–1608.

DOI: 10.1039/c5ja00120j

Google Scholar

[16] C. Liu, K. Shih, Y. Gao, F. Li, L. Wei, Dechlorinating transformation of propachlor through nucleophilic substitution by dithionite on the surface of alumina, J. Soils Sediments. 12 (2012) 724–733.

DOI: 10.1007/s11368-012-0506-0

Google Scholar