International Journal of Extreme Manufacturing, Volume. 6, Issue 2, 25502(2024)
Self-propelled Leidenfrost droplets on femtosecond-laser-induced surface with periodic hydrophobicity gradient
[1] [1] Timonen J V I, Latikka M, Leibler L, Ras R H A and Ikkala O 2013 Switchable static and dynamic self-assembly of magnetic droplets on superhydrophobic surfaces Science341 253–7
[2] [2] Fuerstman M J, Garstecki P and Whitesides G M 2007 Coding/decoding and reversibility of droplet trains in microfluidic networks Science 315 828–32
[3] [3] Park K C, Kim P, Grinthal A, He N, Fox D, Weaver J C and Aizenberg J 2016 Condensation on slippery asymmetric bumps Nature 531 78–82
[4] [4] Ju J, Bai H, Zheng Y M, Zhao T Y, Fang R C and Jiang L 2012 A multi-structural and multi-functional integrated fog collection system in cactus Nat. Commun. 3 1247
[5] [5] Damak M and Varanasi K K 2018 Electrostatically driven fog collection using space charge injection Sci. Adv. 4 eaao5323
[6] [6] Li A, Li H Z, Li Z, Zhao Z P, Li K X, Li M Z and Song Y L 2020 Programmable droplet manipulation by a magnetic-actuated robot Sci. Adv. 6 eaay5808
[7] [7] Gau H, Herminghaus S, Lenz P and Lipowsky R 1999 Liquid morphologies on structured surfaces: from microchannels to microchips Science 283 46–49
[8] [8] Shu C S, Su Q T, Li M H, Wang Z B, Yin S H and Huang S 2022 Fabrication of extreme wettability surface for controllable droplet manipulation over a wide temperature range Int. J. Extrem. Manuf. 4 045103
[9] [9] Lin Y C, Hu Z Y, Zhang M X, Xu T, Feng S L, Jiang L and Zheng Y M 2018 Magnetically induced low adhesive direction of nano/micropillar arrays for microdroplet transport Adv. Funct. Mater. 28 1800163
[10] [10] Daniel S, Chaudhury M K and Chen J C 2001 Fast drop movements resulting from the phase change on a gradient surface Science 291 633–6
[11] [11] Shastry A, Case M J and B?hringer K F 2006 Directing droplets using microstructured surfaces Langmuir22 6161–7
[12] [12] Zheng Y M, Gao X F and Jiang L 2007 Directional adhesion of superhydrophobic butterfly wings Soft Matter 3 178–82
[13] [13] Jokinen V, Leinikka M and Franssila S 2009 Microstructured surfaces for directional wetting Adv. Mater. 21 4835–8
[14] [14] Su Y L, Zhao Y Z, Jiang S Y, Hou X Y and Hong M H 2021 Anisotropic superhydrophobic properties of bioinspired surfaces by laser ablation of metal substrate inside water Adv. Mater. Interfaces 8 2100555
[15] [15] Zhao Y Z, Su Y L, Hou X Y and Hong M H 2021 Directional sliding of water: biomimetic snake scale surfaces Opto-Electron. Adv. 4 210008
[16] [16] Ichimura K, Oh S K and Nakagawa M 2000 Light-driven motion of liquids on a photoresponsive surface Science 288 1624–6
[17] [17] Brzoska J B, Brochard-Wyart F and Rondelez F 1993 Motions of droplets on hydrophobic model surfaces induced by thermal gradients Langmuir 9 2220–4
[18] [18] Habenicht A, Olapinski M, Burmeister F, Leiderer P and Boneberg J 2005 Jumping nanodroplets Science 309 2043–5
[19] [19] Pollack M G, Fair R B and Shenderov A D 2000 Electrowetting-based actuation of liquid droplets for microfluidic applications Appl. Phys. Lett. 77 1725–6
[20] [20] Wang Z K, Ci L, Chen L, Nayak S, Ajayan P M and Koratkar N 2007 Polarity-dependent electrochemically controlled transport of water through carbon nanotube membranes Nano Lett. 7 697–702
[21] [21] McHale G, Brown C V, Newton M I, Wells G G and Sampara N 2011 Dielectrowetting driven spreading of droplets Phys. Rev. Lett. 107 186101
[22] [22] Blossey R 2003 Self-cleaning surfaces—virtual realities Nat.Mater. 2 301–6
[23] [23] Lafuma A and Quéré D 2003 Superhydrophobic states Nat.Mater. 2 457–60
[24] [24] Yarin A L 2006 Drop impact dynamics: splashing, spreading,receding, bouncing… Annu. Rev. Fluid Mech. 38 159–92
[25] [25] Zhang T, Wang J M, Chen L, Zhai J, Song Y L and Jiang L 2011 High-temperature wetting transition on micro-and nanostructured surfaces Angew. Chem. 123 5423–6
[26] [26] Vakarelski I U, Patankar N A, Marston J O, Chan D Y C and Thoroddsen S T 2012 Stabilization of Leidenfrost vapour layer by textured superhydrophobic surfaces Nature489 274–7
[27] [27] Weickgenannt C M, Zhang Y Y, Sinha-Ray S, Roisman I V,Gambaryan-Roisman T, Tropea C and Yarin A L 2011 Inverse-Leidenfrost phenomenon on nanofiber mats on hot surfaces Phys. Rev. E 84 036310
[28] [28] Burton J C, Sharpe A L, Van Der Veen R C A, Franco A and Nagel S R 2012 Geometry of the vapor layer under a Leidenfrost drop Phys. Rev. Lett. 109 074301
[29] [29] Soto D 2014 Non-wetting Drops: From Impacts to Self-propulsion (Université Pierre et Marie Curie)
[30] [30] Linke H, Alemán B J, Melling L D, Taormina M J,Francis M J, Dow-Hygelund C C, Narayanan V, Taylor R P and Stout A 2006 Self-propelled Leidenfrost droplets Phys.Rev. Lett. 96 154502
[31] [31] Lagubeau G, Le Merrer M, Clanet C and Quéré D 2011 Leidenfrost on a ratchet Nat. Phys. 7 395–8
[32] [32] Würger A 2011 Leidenfrost gas ratchets driven by thermal creep Phys. Rev. Lett. 107 164502
[33] [33] Zhang P P, Peng B X, Wang J M and Jiang L 2019 Bioinspired self-propulsion of water droplets at the convergence of Janus-textured heated substrates Adv. Funct. Mater.29 1904535
[34] [34] Li J, Zhou X F, Zhang Y J, Hao C L, Zhao F W, Li M F,Tang H, Ye W J and Wang Z K 2020 Rectification of mobile Leidenfrost droplets by planar ratchets Small 16 1901751
[35] [35] Kruse C, Anderson T, Wilson C, Zuhlke C, Alexander D,Gogos G and Ndao S 2013 Extraordinary shifts of the Leidenfrost temperature from multiscale micro/nanostructured surfaces Langmuir 29 9798–806
[36] [36] Wang A D, Jiang L, Li X W, Xie Q, Li B H, Wang Z, Du K and Lu Y F 2017 Low-adhesive superhydrophobic surface-enhanced Raman spectroscopy substrate fabricated by femtosecond laser ablation for ultratrace molecular detection J. Mater. Chem. B 5 777–84
[37] [37] Rumrill S M, Agarwal V and Lau K K S 2021 Conformal growth of ultrathin hydrophilic coatings on hydrophobic surfaces using initiated chemical vapor deposition Langmuir 37 7751–9
[38] [38] Bi J L, Ling H Q, Hu A M, Hang T and Li M 2011 Wetting process of electrolyte in high density Cu/Sn micro-bumps electrodepositing Appl. Surf. Sci. 257 3723–7
[39] [39] Shapturenka P, Gaillard P, Chan L, Polonskyi O and Gordon M J 2021 Hierarchical colloid-based lithography for wettability tuning of semiconductor surfaces J. Vac. Sci.Technol. A 39 053209
[40] [40] Chichkov B N, Momma C, Nolte S, Von Alvensleben F and Tünnermann A 1996 Femtosecond, picosecond and nanosecond laser ablation of solids Appl. Phys. A 63 109–15
[41] [41] Lian Y L, Jiang L, Sun J Y, Zhou J D and Zhou Y 2023 Ultrafast quasi-three-dimensional imaging Int. J. Extrem.Manuf. 5 045601
[42] [42] Jiang L, Wang A D, Li B, Cui T H and Lu Y F 2018 Electrons dynamics control by shaping femtosecond laser pulses in micro/nanofabrication: modeling, method, measurement and application Light Sci. Appl. 7 17134
Get Citation
Copy Citation Text
Bohong Li, Lan Jiang, Xiaowei Li, Zhipeng Wang, Peng Yi. Self-propelled Leidenfrost droplets on femtosecond-laser-induced surface with periodic hydrophobicity gradient[J]. International Journal of Extreme Manufacturing, 2024, 6(2): 25502
Received: May. 9, 2023
Accepted: --
Published Online: Sep. 6, 2024
The Author Email: Jiang Lan (jianglan@bit.edu.cn)