• Opto-Electronic Engineering
  • Vol. 46, Issue 8, 190022 (2019)
Zheng Zhixia1、* and Yang Huan2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    DOI: 10.12086/oee.2019.190022 Cite this Article
    Zheng Zhixia, Yang Huan. Effect of pre-wetting on the wettability of laser ablated Al superhydrophobic/superhydrophilic surface[J]. Opto-Electronic Engineering, 2019, 46(8): 190022 Copy Citation Text show less
    References

    [1] Bhushan B, Jung Y C. Natural and biomimetic artificial surfaces for superhydrophobicity, self-cleaning, low adhesion, and drag reduction[J]. Progress in Materials Science, 2011, 56(1): 1–108.

    [2] She Z X, Li Q, Wang Z W, et al. Researching the fabrication of anticorrosion superhydrophobic surface on magnesium alloy and its mechanical stability and durability[J]. Chemical Engineering Journal, 2013, 228: 415–424.

    [3] Cao L L, Jones A K, Sikka V K, et al. Anti-icing superhydrophobic coatings[J]. Langmuir, 2009, 25(21): 12444–12448.

    [4] Khew S Y, Tan C F, Yan H P, et al. Nanosecond laser ablation for enhanced adhesion of CuO nanowires on copper substrate and its application for oil-water separation[J]. Applied Surface Science, 2019, 465: 995–1002.

    [5] Zhang H F, Yin L, Liu X W, et al. Wetting behavior and drag reduction of superhydrophobic layered double hydroxides films on aluminum[J]. Applied Surface Science, 2016, 380: 178–184.

    [6] Watson G S, Green D W, Schwarzkopf L, et al. A gecko skin micro/nano structure-A low adhesion, superhydrophobic, anti-wetting, self-cleaning, biocompatible, antibacterial surface[J]. Acta Biomaterialia, 2015, 21: 109–122.

    [7] Celia E, Darmanin T, de Givenchy E T, et al. Recent advances in designing superhydrophobic surfaces[J]. Journal of Colloid and Interface Science, 2013, 402: 1–18.

    [8] Xu K C, Zhang C T, Lu T H, et al. Hybrid metal-insulator-metal structures on Si nanowires array for surface enhanced Raman scattering[J]. Opto-Electronic Engineering, 2017, 44(2): 185–191.

    [9] Zhang X, Shi F, Niu J, et al. Superhydrophobic surfaces: from structural control to functional application[J]. Journal of Materials Chemistry, 2008, 18(6): 621–633.

    [10] Emelyanenko A M, Shagieva F M, Domantovsky A G, et al. Nanosecond laser micro- and nanotexturing for the design of a superhydrophobic coating robust against long-term contact with water, cavitation, and abrasion[J]. Applied Surface Science, 2015, 332: 513–517.

    [11] Tang T, Shim V, Pan Z Y, et al. Laser ablation of metal substrates for super-hydrophobic effect[J]. JLMN-Journal of Laser Micro/Nanoengineering, 2011, 6(1): 6–9.

    [12] Chun D M, Ngo C V, Lee K M. Fast fabrication of superhydrophobic metallic surface using nanosecond laser texturing and low-temperature annealing[J]. CIRP Annals, 2016, 65(1): 519–522.

    [13] Zhou R, Li F P, Hong M H. Laser interaction with materials and its applications in precision engineering[J]. Scientia Sinica Physica, Mechanica & Astronomica, 2017, 47(2): 024201.

    [14] Yang H, Cao Y, Li F P, et al. Research progress in superhydrophobic surfaces fabricated by laser[J]. Opto-Electronic Engineering, 2017, 44(12): 1160-1168.

    [15] Liu M J, Wang S T, Jiang L. Nature-inspired superwettability systems[J]. Nature Reviews Materials, 2017, 2(7): 17036.

    [16] Zhang G L, Zhang J H, Su P C, et al. Non-activation MOF arrays as a coating layer to fabricate a stable superhydrophobic micro/nano flower-like architecture[J]. Chemical Communications, 2017, 53(59): 8340–8343.

    [17] Ou R W, Wei J, Jiang L, et al. Robust thermoresponsive polymer composite membrane with switchable superhydrophilicity and superhydrophobicity for efficient oil–water separation[J]. Environmental Science & Technology, 2016, 50(2): 906–914.

    [18] Yong J L, Chen F, Li M J, et al. Remarkably simple achievement of superhydrophobicity, superhydrophilicity, underwater superoleophobicity, underwater superoleophilicity, underwater superaerophobicity, and underwater superaerophilicity on femtosecond laser ablated PDMS surfaces[J]. Journal of Materials Chemistry A, 2017, 5(48): 25249–25257.

    [19] Zhou X Y, Zhang Z Z, Xu X H, et al. Robust and durable superhydrophobic cotton fabrics for oil/water separation[J]. ACS Applied Materials & Interfaces, 2013, 5(15): 7208–7214.

    [20] Liu M J, Wang S T, Wei Z X, et al. Bioinspired design of a superoleophobic and low adhesive water/solid interface[J]. Advanced Materials, 2009, 21(6): 665–669.

    [21] Wang H X, Zhou H, Niu H T, et al. Dual-layer superamphiphobic/superhydrophobic-oleophilic nanofibrous membranes with unidirectional oil-transport ability and strengthened oil-water separation performance[J]. Advanced Materials Interfaces, 2015, 2(4): 1400506.

    [22] Martines E, Seunarine K, Morgan H, et al. Superhydrophobicity and superhydrophilicity of regular nanopatterns[J]. Nano Letters, 2005, 5(10): 2097–2103.

    [23] Zhang X Y, Li Z, Liu K S, et al. Bioinspired multifunctional foam with self-cleaning and oil/water separation[J]. Advanced Functional Materials, 2013, 23(22): 2881–2886.

    [24] Jagdheesh R, Pathiraj B, Karatay E, et al. Laser-induced nanoscale superhydrophobic structures on metal surfaces[J]. Langmuir, 2011, 27(13): 8464–8469.

    [25] Xu K C, Yan H P, Tan C F, et al. Hedgehog inspired CuO Nanowires/Cu2O composites for broadband visible-light-driven recyclable surface enhanced Raman scattering[J]. Advanced Optical Materials, 2018, 6(7): 1701167.

    [26] Yan H P, Rashid M R B A, Khew S Y, et al. Wettability transition of laser textured brass surfaces inside different mediums[J]. Applied Surface Science, 2018, 427: 369–375.

    [27] He A, Liu W W, Xue W, et al. Nanosecond laser ablated copper superhydrophobic surface with tunable ultrahigh adhesion and its renewability with low temperature annealing[J]. Applied Surface Science, 2018, 434: 120–125.

    [28] Long J Y, Fan P X, Gong D W, et al. Superhydrophobic surfaces fabricated by femtosecond laser with tunable water adhesion: from lotus leaf to rose petal[J]. ACS Applied Materials & Interfaces, 2015, 7(18): 9858–9865.

    [29] Lai Y K, Gao X F, Zhuang H F, et al. Designing superhydrophobic porous nanostructures with tunable water adhesion[J]. Advanced Materials, 2009, 21(37): 3799–3803.

    [30] Zhou R, Lin S D, Shen F, et al. A universal copper mesh with on-demand wettability fabricated by pulsed laser ablation for oil/water separation[J]. Surface and Coatings Technology, 2018, 348: 73–80.

    [31] Yong J L, Chen F, Huo J L, et al. Femtosecond laser induced underwater superaerophilic and superaerophobic PDMS sheets with through microholes for selective passage of air bubbles and further collection of underwater gas[J]. Nanoscale, 2018, 10(8): 3688–3696.

    [32] Peters A M, Pirat C, Sbragaglia M, et al. Cassie-Baxter to Wenzel state wetting transition: scaling of the front velocity[J]. The European Physical Journal E, 2009, 29(4): 391–397.

    [33] Ulman A. Formation and structure of self-assembled monolayers[J]. Chemical Reviews, 1996, 96(4): 1533–1554.

    [34] Laibinis P E, Hickman J J, Wrighton M S, et al. Orthogonal self-assembled monolayers: alkanethiols on gold and alkane carboxylic acids on alumina[J]. Science, 1989, 245(4920): 845–847.

    [35] Schmohl A, Khan A, Hess P. Functionalization of oxidized silicon surfaces with methyl groups and their characterization[J]. Superlattices and Microstructures, 2004, 36(1–3): 113–121.

    Zheng Zhixia, Yang Huan. Effect of pre-wetting on the wettability of laser ablated Al superhydrophobic/superhydrophilic surface[J]. Opto-Electronic Engineering, 2019, 46(8): 190022
    Download Citation