曾丽等:埃洛石纳米管的疏水改性及其复合材料的研究进展 .743 with superhydrophobicity.J Mater Chem A,2018,6(35):16731 "roll-off"superamphiphobic paper surfaces.ACS Appl Mater [38]Chenab KK,Sohrabi B.Rahmanzadeh A.Superhydrophobicity: lmte/faces,.2017,9(10:9195 advanced biological and biomedical applications.Biomater Sci, [54]Liu T L,Kim C J.Tuming a surface superrepellent even to 2019,7(8):3110 completely wetting liquids.Science,2014,346(6213):1096 [39]Li L X,Li B C,Dong J,et al.Roles of silanes and silicones in [55]Zhou H,Wang H X.Niu H T,et al.A waterborne coating system forming superhydrophobic and superoleophobic materials.Mater for preparing robust,self-healing,superamphiphobic surfaces.Adv Chem A,2016,4(36):13677 Funct Mater,2017,27(14:1604261 [40]Li S H,Huang JY,Chen Z,et al.A review on special wettability [56]Wang YY,Xue J,Wang QJ,et al.Verification of icephobic/anti- textiles:theoretical models,fabrication technologies and icing properties of a superhydrophobic surface.ACS Appl Mater multifunctional applications.J Mater Chem 4,2017,5(1):31 Interfaces,2013,5(8):3370 [41]Dong S T.The Fabrication and Property Research of [57]Zhai G K,Li S L,Chen S S,et al.Anti-icing performance of Superhydrophobic and Superamphiphobic Coatings Based on superhydrophobic coating prepared by modified fluorinated Spent Bleaching Earth Attapulgite [Dissertation].Lanzhou: silicone.Chin J Eng,2018,40(7):864 Lanzhou University of Technology,2018 (翟广坤,李曙林,陈素素,等.氟化改性硅树脂制备的超疏水涂 (董拴涛.基于废弃凹凸棒石超疏水/超双疏涂层的制备及性能 层防覆冰性能.工程科学学报,2018,40(7):864) 研究学位论文].兰州:兰州理工大学,2018) [58]Geng Z,He J H.An effective method to significantly enhance the [42]Chen FF,Zhu Y J,Xiong Z C,et al.Hydroxyapatite nanowire- robustness and adhesion-to-substrate of high transmittance based all-weather flexible electrically conductive paper with superamphiphobic silica thin films.J Mater Chem A,2014,2(39): superhydrophobic and flame-retardant properties.ACS App/Mater 16601 Interfaces,2017,9(45):39534 [59]Yu S,Guo Z G,Liu W M.Biomimetic transparent and [43]Chu F Q,Wu X M,Wang LL.Meltwater evolution during superhydrophobic coatings:from nature and beyond nature.Chem defrosting on superhydrophobic surfaces.ACS Appl Mater Commun,2015,51(10):1775 Interfaces,2018,10(1):1415 [60]Zhou YY,Ma Y B,Sun YY,et al.Robust superhydrophobic [44]Han J T,Kim B K,Woo J S,et al.Bioinspired multifunctional surface based on multiple hybrid coatings for application in superhydrophobic surfaces with carbon-nanotube-based corrosion protection.ACS Appl Mater Interfaces,2019,11(6): conducting pastes by facile and scalable printing.ACS Appl Mater 6512 Interfaces,2017,9(8):7780 [61]Wen M,Peng C.Yao M,et al.Efficient gas adsorption using [45]Liu Q,Chen D X,Kang Z X.One-step electrodeposition process to superamphiphobic porous monoliths as the under-liquid gas. fabricate corrosion-resistant superhydrophobic surface on conductive circuits.ACS Appl Mater Interfaces,2019,11(27): magnesium alloy.ACS Appl Mater Interfaces,2015,7(3):1859 24795 [46]Murphy K R,McClintic W T,Lester K C,et al.Dynamic [62]Wen M,Zhong J,Zhao S J,et al.Robust transparent defrosting on scalable superhydrophobic surfaces.A4CSAppl Mater superamphiphobic coatings on non-fabric flat substrates with Interfaces,2017,9(28):24308 inorganic adhesive titania bonded silica.J Mater Chem 4,2017, [47]Wang H P,He M J,Liu H,et al.One-step fabrication of robust 5(18):8352 superhydrophobic steel surfaces with mechanical durability, [63]Guo X J,Xue C H,Jia S T,et al.Mechanically durable thermal stability,and anti-icing function.ACS Appl Mater superamphiphobic surfaces via synergistic hydrophobization and Interfaces,2019,11(28):25586 fluorination.Chem Eng J,2017,320:330 [48]Wen G,Guo Z G,Liu W M.Biomimetic polymeric [64]Liu H,Huang J Y,Li F Y,et al.Multifunctional superamphiphobic superhydrophobic surfaces and nanostructures:from fabrication to fabrics with asymmetric wettability for one-way fluid transport and applications.Nanoscale,2017,9(10):3338 templated pattering.Cellulose,2017,24(2):1129 [49]Bhushan B.Jung Y C.Natural and biomimetic artificial surfaces [65]Yin K,Dong X R,Zhang F,et al.Superamphiphobic miniature for superhydrophobicity,self-cleaning,low adhesion,and drag boat fabricated by laser micromachining.Appl Phrys Lett,2017, reduction.Prog Mater Sci,2011,56(1):1 110(12):121909 [50]Gao X F,Jiang L.Water-repellent legs of water striders.Nature, [66]Wen R F,Xu S S,Zhao D L,et al.Hierarchical superhydrophobic 2004,432(7013):36 surfaces with micropattered nanowire arrays for high-efficiency [51]Zheng Y M,Gao X F,Jiang L.Directional adhesion of jumping droplet condensation.ACS Appl Mater Interfaces,2017, superhydrophobic butterfly wings.Sof Marter,2007,3(2):178 9(51):44911 [52]Gou X L,Guo Z G.Surface topographies of biomimetic [67]Nagappan S.Ha C S.Emerging trends in superhydrophobic superamphiphobic materials:design criteria,fabrication and surface based magnetic materials:fabrications and their potential performance.Ady Colloid Interface Sci,2019,269:87 applications.J Mater Chem A,2015,3(7):3224 [53]Jiang L,Tang Z G,Clinton R M,et al.Two-step process to create [68]Sahoo B N,Kandasubramanian B.Recent progress in fabricationwith superhydrophobicity. J Mater Chem A, 2018, 6(35): 16731 Chenab K K, Sohrabi B, Rahmanzadeh A. Superhydrophobicity: advanced biological and biomedical applications. Biomater Sci, 2019, 7(8): 3110 [38] Li L X, Li B C, Dong J, et al. Roles of silanes and silicones in forming superhydrophobic and superoleophobic materials. J Mater Chem A, 2016, 4(36): 13677 [39] Li S H, Huang J Y, Chen Z, et al. A review on special wettability textiles: theoretical models, fabrication technologies and multifunctional applications. J Mater Chem A, 2017, 5(1): 31 [40] Dong S T. The Fabrication and Property Research of Superhydrophobic and Superamphiphobic Coatings Based on Spent Bleaching Earth Attapulgite [Dissertation]. Lanzhou: Lanzhou University of Technology, 2018 ( 董拴涛. 基于废弃凹凸棒石超疏水/超双疏涂层的制备及性能 研究[学位论文]. 兰州: 兰州理工大学, 2018) [41] Chen F F, Zhu Y J, Xiong Z C, et al. Hydroxyapatite nanowirebased all-weather flexible electrically conductive paper with superhydrophobic and flame-retardant properties. ACS Appl Mater Interfaces, 2017, 9(45): 39534 [42] Chu F Q, Wu X M, Wang L L. Meltwater evolution during defrosting on superhydrophobic surfaces. ACS Appl Mater Interfaces, 2018, 10(1): 1415 [43] Han J T, Kim B K, Woo J S, et al. Bioinspired multifunctional superhydrophobic surfaces with carbon-nanotube-based conducting pastes by facile and scalable printing. ACS Appl Mater Interfaces, 2017, 9(8): 7780 [44] Liu Q, Chen D X, Kang Z X. One-step electrodeposition process to fabricate corrosion-resistant superhydrophobic surface on magnesium alloy. ACS Appl Mater Interfaces, 2015, 7(3): 1859 [45] Murphy K R, McClintic W T, Lester K C, et al. Dynamic defrosting on scalable superhydrophobic surfaces. ACS Appl Mater Interfaces, 2017, 9(28): 24308 [46] Wang H P, He M J, Liu H, et al. One-step fabrication of robust superhydrophobic steel surfaces with mechanical durability, thermal stability, and anti-icing function. ACS Appl Mater Interfaces, 2019, 11(28): 25586 [47] Wen G, Guo Z G, Liu W M. Biomimetic polymeric superhydrophobic surfaces and nanostructures: from fabrication to applications. Nanoscale, 2017, 9(10): 3338 [48] Bhushan B, Jung Y C. Natural and biomimetic artificial surfaces for superhydrophobicity, self-cleaning, low adhesion, and drag reduction. Prog Mater Sci, 2011, 56(1): 1 [49] Gao X F, Jiang L. Water-repellent legs of water striders. Nature, 2004, 432(7013): 36 [50] Zheng Y M, Gao X F, Jiang L. Directional adhesion of superhydrophobic butterfly wings. Soft Matter, 2007, 3(2): 178 [51] Gou X L, Guo Z G. Surface topographies of biomimetic superamphiphobic materials: design criteria, fabrication and performance. Adv Colloid Interface Sci, 2019, 269: 87 [52] [53] Jiang L, Tang Z G, Clinton R M, et al. Two-step process to create "roll-off" superamphiphobic paper surfaces. ACS Appl Mater Interfaces, 2017, 9(10): 9195 Liu T L, Kim C J. Turning a surface superrepellent even to completely wetting liquids. Science, 2014, 346(6213): 1096 [54] Zhou H, Wang H X, Niu H T, et al. A waterborne coating system for preparing robust, self-healing, superamphiphobic surfaces. Adv Funct Mater, 2017, 27(14): 1604261 [55] Wang Y Y, Xue J, Wang Q J, et al. Verification of icephobic/antiicing properties of a superhydrophobic surface. ACS Appl Mater Interfaces, 2013, 5(8): 3370 [56] Zhai G K, Li S L, Chen S S, et al. Anti-icing performance of superhydrophobic coating prepared by modified fluorinated silicone. Chin J Eng, 2018, 40(7): 864 (翟广坤, 李曙林, 陈素素, 等. 氟化改性硅树脂制备的超疏水涂 层防覆冰性能. 工程科学学报, 2018, 40(7):864) [57] Geng Z, He J H. An effective method to significantly enhance the robustness and adhesion-to-substrate of high transmittance superamphiphobic silica thin films. J Mater Chem A, 2014, 2(39): 16601 [58] Yu S, Guo Z G, Liu W M. Biomimetic transparent and superhydrophobic coatings: from nature and beyond nature. Chem Commun, 2015, 51(10): 1775 [59] Zhou Y Y, Ma Y B, Sun Y Y, et al. Robust superhydrophobic surface based on multiple hybrid coatings for application in corrosion protection. ACS Appl Mater Interfaces, 2019, 11(6): 6512 [60] Wen M, Peng C, Yao M, et al. Efficient gas adsorption using superamphiphobic porous monoliths as the under-liquid gasconductive circuits. ACS Appl Mater Interfaces, 2019, 11(27): 24795 [61] Wen M, Zhong J, Zhao S J, et al. Robust transparent superamphiphobic coatings on non-fabric flat substrates with inorganic adhesive titania bonded silica. J Mater Chem A, 2017, 5(18): 8352 [62] Guo X J, Xue C H, Jia S T, et al. Mechanically durable superamphiphobic surfaces via synergistic hydrophobization and fluorination. Chem Eng J, 2017, 320: 330 [63] Liu H, Huang J Y, Li F Y, et al. Multifunctional superamphiphobic fabrics with asymmetric wettability for one-way fluid transport and templated patterning. Cellulose, 2017, 24(2): 1129 [64] Yin K, Dong X R, Zhang F, et al. Superamphiphobic miniature boat fabricated by laser micromachining. Appl Phys Lett, 2017, 110(12): 121909 [65] Wen R F, Xu S S, Zhao D L, et al. Hierarchical superhydrophobic surfaces with micropatterned nanowire arrays for high-efficiency jumping droplet condensation. ACS Appl Mater Interfaces, 2017, 9(51): 44911 [66] Nagappan S, Ha C S. Emerging trends in superhydrophobic surface based magnetic materials: fabrications and their potential applications. J Mater Chem A, 2015, 3(7): 3224 [67] [68] Sahoo B N, Kandasubramanian B. Recent progress in fabrication 曾 丽等: 埃洛石纳米管的疏水改性及其复合材料的研究进展 · 743 ·