861
Views
27
CrossRef citations to date
0
Altmetric
Original Articles

Preparation and characterization of superhydrophobic surface based on polydimethylsiloxane (PDMS)

, , , &
Pages 1870-1881 | Received 30 Nov 2018, Accepted 01 May 2019, Published online: 13 May 2019

References

  • Kim S, Hwang HJ, Cho H, et al. Repeatable replication method with liquid infiltration to fabricate robust, flexible, and transparent, anti-reflective superhydrophobic polymer films on a large scale. Chem Eng J. 2018;350:225–232.
  • Babu DJ, Mail M, Barthlott W, et al. Superhydrophobic vertically aligned carbon nanotubes for biomimetic air retention under water (salvinia effect). Adv Mater Interfaces. 2017;4:1700273.
  • Chen X, Wu Y, Su B, et al. Terminating marine methane bubbles by superhydrophobic sponges. Adv Mater. 2012;24:5884–5889.
  • Bhushan B, Her EK. Fabrication of superhydrophobic surfaces with high and low adhesion inspired from rose petal. Langmuir. 2010;26:8207–8217.
  • Zheng S, Li C, Fu Q, et al. Fabrication of self-cleaning superhydrophobic surface on aluminium alloys with excellent corrosion resistance. Surf Coatings Technol. 2015;276:341–348.
  • Jin M, Feng X, Xi J, et al. Super‐hydrophobic PDMS surface with ultra‐low adhesive force. Macromol Rapid Commun. 2010;26:1805–1809.
  • Marmur A. The Lotus effect: superhydrophobicity and metastability. Langmuir. 2004;20:3517–3519.
  • Hwang J, Hong S-H, Lee H. Mimicking the nanostructure of bamboo leaves (backside) for hydrophobicity using polydimethylsiloxane moulding and nano-imprint lithography. J Nanosci Nanotech. 2009;9:3644–3647.
  • Guan H, Han Z, Cao H, et al. Characterization of multi-scale morphology and superhydrophobicity of water bamboo leaves and biomimetic Polydimethylsiloxane (PDMS) replicas. J Bionic Eng. 2015;12:624–633.
  • Song Y, Liu Y, Jiang H, et al. Mosquito eyes inspired surfaces with robust antireflectivity and superhydrophobicity. Surf Coatings Technol. 2017;316:85–92.
  • Gao XF, Yan X, Yao X, et al. The dry‐style antifogging properties of mosquito compound eyes and artificial analogues prepared by soft lithography. Adv Mater. 2007;19:2213–2217.
  • Lv C, Hao P, Zhang X, et al. Dewetting transitions of dropwise condensation on nanotexture-enhanced superhydrophobic surfaces. Acs Nano. 2015;9:12311–12319.
  • Shi F, Niu J, Liu J, et al. Towards understanding why a superhydrophobic coating is needed by water striders. Adv Mater. 2007;19:2257–2261.
  • Zhang L, Lyu S, Chen Z, et al. Preparation and characterization of dual-functional coatings of nanofibrillated cellulose and modified SrAl 2 O 4: Eu, Dy phosphors. Surf Coatings Technol. 2018;349:318–327.
  • Rezaei S, Manoucheri I, Moradian R, et al. One-step chemical vapor deposition and modification of silica nanoparticles at the lowest possible temperature and superhydrophobic surface fabrication. Chem Eng J. 2014;252:11–16.
  • Karimi A, Izadan H, Khoddami A, et al. Synthesis and hydrophobic evaluation of the electro-spun nano-TiO2/PET fibrous bats after treatment with an alkaline solution and fluorocarbon material. J Textile Inst. 2018;109:569–576.
  • Sarkar MK, Bal K, He F, et al. Design of an outstanding super-hydrophobic surface by electro-spinning. Appl Surf Sci. 2011;257:7003–7009.
  • Yuan Z, Bin J, Wang X, et al. Fabrication of superhydrophobic surface with hierarchical multi-scale structure on copper foil. Surf Coatings Technol. 2014;254:151–156.
  • Wang F, Li S, Wang L. Fabrication of artificial super-hydrophobic lotus-leaf-like bamboo surfaces through soft lithography. Colloids Surf A Physicochem Eng Aspects. 2017;513:389–395.
  • Woodward I, Schofield WCE, Roucoules V, et al. Super-hydrophobic surfaces produced by plasma fluorination of polybutadiene films. Langmuir. 2003;19:3432–3438.
  • Ding B, Kim H, Kim C, et al. Morphology and crystalline phase study of electrospun TiO2 SiO2 nanofibres. Nanotechnology. 2003;14:532–537.
  • Zhang Y, Ren F, Liu Y. A superhydrophobic EP/PDMS nanocomposite coating with high gamma radiation stability. Appl Surf Sci. 2018;436:405–410.
  • Darmanin T, Guittard F. Superhydrophobic and superoleophobic properties in nature. Mater Today. 2015;18:273–285.
  • Cheng M, Song M, Dong H, et al. Surface adhesive forces: a metric describing the drag‐reducing effects of superhydrophobic coatings. Small. 2015;11:1665–1671.
  • Yang C, Wang F, Li W, et al. Anti-icing properties of superhydrophobic ZnO/PDMS composite coating. Appl Phys A. 2016;122:1–10.
  • Si Y, Guo Z. Superhydrophobic nanocoatings: from materials to fabrications and to applications. Nanoscale. 2015;7:5922–5946.
  • Xia D, Johnson LM, López GP. Anisotropic wetting surfaces with one‐dimesional and directional structures: fabrication approaches, wetting properties and potential applications. Adv Mater. 2012;24:1287–1302.
  • Nagappan S, Ha CS. Emerging trends in superhydrophobic surface based magnetic materials: fabrications and their potential applications. J Mater Chem A. 2015;3:3224–3251.
  • Wang Z, Li Q, She Z, et al. Low-cost and large-scale fabrication method for an environmentally-friendly superhydrophobic coating on magnesium alloy. J Mater Chem. 2012; 22:4097–4105.
  • Arukalam IO, Oguzie EE, Li Y. Fabrication of FDTS-modified PDMS-ZnO nanocomposite hydrophobic coating with anti-fouling capability for corrosion protection of Q235 steel. J Colloid Interface Sci. 2016;484:220–228.
  • Zhang D, Li L, Wu Y, et al. One-step method for fabrication of superhydrophobic and superoleophilic surface for water-oil separation. Colloids Surf A Physicochem Eng Aspects. 2018;552:32–38.
  • Cassie ABD, Baxter S. Wettability of porous surfaces. Trans Faraday Soc. 1944;40:546–551.
  • Abbas R, Hefnawy A, El-Dessouky WI, et al. Effect of durable superhydrophobic FS/PS using DCTES on carbon steel. J Mat Sci Eng. 2018;7:408.
  • Yin K, Du H, Dong X, et al. A simple way to achieve bioinspired hybrid wettability surface with micro/nanopatterns for efficient fog collection. Nanoscale. 2017;9:14620–14626.
  • Zhang Z, Wang H, Liang Y, et al. One-step fabrication of robust superhydrophobic and superoleophilic surfaces with self-cleaning and oil/water separation function. Sci Rep. 2018;8:3869.
  • Banerjee D, Mukherjee S, Chattopadhyay KK. Controlling the surface topology and hence the hydrophobicity of amorphous carbon thin films. Carbon. 2010;48:1025–1031.
  • Owens DK, Wendt RC. Estimation of the surface free energy of polymers. J Appl Polym Sci. 1969;13:1741–1747.
  • Nine MJ, Cole MA, Johnson L, et al. Robust superhydrophobic graphene-based composite coatings with self-cleaning and corrosion barrier properties. ACS Appl Mater Interfaces. 2015;7:28482–28493.
  • Wisdom KM, Watson JA, Qu X, et al. Self-cleaning of superhydrophobic surfaces by self-propelled jumping condensate. Proc Natl Acad Sci USA. 2013;110:7992–7997.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.