26 ganesh va dinachali ss raut hk walsh tm nair as

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[26] Ganesh VA, Dinachali SS, Raut HK, Walsh TM, Nair AS, Ramakrishna S. Electrospun SiO2 nanofibers as a template to fabricate a robust and transparent superamphiphobic coating. Rsc Adv. 2013;3:3819-24. [27] Nguyen TPN, Brunet P, Coffinier Y, Boukherroub R. Quantitative Testing of Robustness on Superomniphobic Surfaces by Drop Impact. Langmuir. 2010;26:18369-73. [28] Xiong D, Liu G, Scott Duncan EJ. Robust amphiphobic coatings from bi-functional silica particles on flat substrates. Polymer. 2013;54:3008-16. [29] Zhang GW, Hu JW, Liu GJ, Zou HL, Tu YY, Li F, et al. Bi-functional random copolymers for one-pot fabrication of superamphiphobic particulate coatings. J Mater Chem A. 2013;1:6226-37. [30] Lee SG, Ham DS, Lee DY, Bong H, Cho K. Transparent superhydrophobic/translucent superamphiphobic coatings based on silica-fluoropolymer hybrid nanoparticles. Langmuir. 2013;29:15051-7. [31] Campos R, Guenthner AJ, Meuler AJ, Tuteja A, Cohen RE, McKinley GH, et al. Superoleophobic surfaces through control of sprayed-on stochastic topography. Langmuir. 2012;28:9834-41. [32] Hsieh C-T, Cheng Y-S, Hsu S-M, Lin J-Y. Water and oil repellency of flexible silica-coated polymeric substrates. Appl Surf Sci. 2010;256:4867-72. [33] Ge D, Yang L, Zhang Y, Rahmawan Y, Yang S. Transparent and Superamphiphobic Surfaces from One-Step Spray Coating of Stringed Silica Nanoparticle/Sol Solutions. Part Part Syst Char. 2014;31:763-70. [34] Fu QT, Wu XH, Kumar D, Ho JWC, Kanhere PD, Srikanth N, et al. Development of Sol-Gel Icephobic Coatings: Effect of Surface Roughness and Surface Energy. Acs Appl Mater Inter. 2014;6:20685-92. [35] Kumar D, Wu XH, Fu QT, Ho JWC, Kanhere PD, Li L, et al. Development of durable self- cleaning coatings using organic-inorganic hybrid sol-gel method. Appl Surf Sci. 2015;344:205-12. [36] Kumar D, Wu XH, Fu Q, Ho JWC, Kanhere PD, Li L, et al. Hydrophobic sol–gel coatings based on polydimethylsiloxane for self-cleaning applications. Materials & Design. 2015;86:855-62. [37] Liu TY, Kim CJ. Turning a surface superrepellent even to completely wetting liquids. Science. 2014;346:1096-100. [38] Cassie ABD, Baxter S. Wettability of porous surfaces. T Faraday Soc. 1944;40:0546-50.
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ACCEPTED MANUSCRIPT ACCEPTED MANUSCRIPT 24 [39] Bellanger H, Darmanin T, de Givenchy ET, Guittard F. Influence of long alkyl spacers in the elaboration of superoleophobic surfaces with short fluorinated chains. Rsc Adv. 2013;3:5556-62. [40] Lu Y, Song JL, Liu X, Xu WJ, Xing YJ, Wei ZF. Preparation of Superoleophobic and Superhydrophobic Titanium Surfaces via an Environmentally Friendly Electrochemical Etching Method. Acs Sustain Chem Eng. 2013;1:102-9. [41] Woodward I, Schofield WCE, Roucoules V, Badyal JPS. Super-hydrophobic surfaces produced by plasma fluorination of polybutadiene films. Langmuir. 2003;19:3432-8. [42] Ganesh VA, Dinachali SS, Nair AS, Ramakrishna S. Robust superamphiphobic film from electrospun TiO2 nanostructures. ACS Appl Mater Interfaces. 2013;5:1527-32.
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ACCEPTED MANUSCRIPT ACCEPTED MANUSCRIPT 25 List of Figures Figure 1: FESEM images of (a) TGS 1:5, (b) TGS 2:4, (c) TGS 3:3, (d) TGS 6:0 coating surfaces. The scale bar is 10 m for all images.
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