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Materials Technology
Advanced Performance Materials
Volume 37, 2022 - Issue 8
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Research Article

Biomimetic surfaces prepared by soft lithography and vapour deposition for hydrophobic and antibacterial performance

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Pages 745-752 | Received 02 Dec 2020, Accepted 06 Jan 2021, Published online: 25 Jan 2021

References

  • Wang F, Pi J, Song F, et al.  A superhydrophobic coating to create multi-functional materials with mechanical/chemical/physical robustness. Chem Eng J. 2020;381:122539.
  • Leermakers FA, Luengo GS, Baghdadli N, et al. Turning autophobic wetting on biomimetic surfaces into complete wetting by wetting additives. Soft matter. 2020.
  • Hossain M, Zakaria Y, Zikri A, et al. E-beam evaporated hydrophobic metal oxide thin films as carrier transport materials for large scale perovskite solar cells. Materials Technology. 2020. p. 1.
  • Pal S, Mondal S, Maity J. In situ generation and deposition of ZnO nanoparticles on cotton surface to impart hydrophobicity: investigation of antibacterial activity. Materials technology. 2018;33:555.
  • Gleason KK. Cvd polymers: fabrication of organic surfaces and devices”. Weinheim, Germany: John Wiley & Sons; 2015.
  • Karaman M, Gürsoy M, Kus M, et al. Surf treat biol chem phys appl. 2017. p. 23.
  • Dhanakodi K, Thirunavukkarasu P, Rajamanickam A. Gas sensor properties of surface modification on nebuliser spray coated ZnO nanostructure thin films. Materials technology. 2015;30:127.
  • Sharma A, Khangarot RK, Kumar N, et al. Rise in UV and blue emission and reduction of surface roughness due to the presence of Ag and Al in monocrystalline ZnO films grown by sol-gel spin coating. Materials technology. 2020. p. 1.
  • Hari prakash N, Sarma A, Sarma B. Antibacterial studies of copper deposited water hyacinth fiber using RF plasma sputtering process. Materials Technology. 2018;33:621.
  • Gürsoy M, Karaman M. Surface treatments for biological, chemical, and physical applications. Weinheim, Germany.John Wiley & Sons. 2017. p. 1.
  • Cloutier M, Mantovani D, Rosei F. Antibacterial coatings: challenges, perspectives, and opportunities. Trends in biotechnology. 2015;33:637.
  • Baker R. Zeszyty naukowe. Uniwersytet Szczeciński: Acta Biologica; 2012. p. 19.
  • Hinton H. The respiratory system of the egg-shell of the common housefly. J insect physiol. 1967;13(5):647.
  • Sukontason K, Piangjai S, Bunchu N, et al. Surface ultrastructure of the puparia of the blow fly, Lucilia cuprina (Diptera: Calliphoridae), and flesh fly. Parasitol Res. 2006;98:482.
  • Nune K, Misra R. Biological activity of nanostructured metallic materials for biomedical applications. Mater Technol. 2016;31:772.
  • Mali S, Nune K, Misra R. Biomimetic nanostructured hydroxyapatite coatings on metallic implant materials. Materials technology. 2016;31:782.
  • Ritchie A, Cox H, Barrientos-palomo S, et al. Bioinspired multifunctional polymer–nanoparticle–surfactant complex nanocomposite surfaces for antibacterial oil–water separation. Colloids and surfaces a: physicochemical and engineering aspects. 2019;560:352.
  • Hu H, Siu VS, Gifford SM, et al. Bio-inspired silicon nanospikes fabricated by metal-assisted chemical etching for antibacterial surfaces. Applied physics letters. 2017;111:253701.
  • Li X, Wu B, Chen H, et al. Recent developments in smart antibacterial surfaces to inhibit biofilm formation and bacterial infections. Journal of materials chemistry b. 2018;6:4274.
  • Mauchauffé R, Moreno-couranjou M, Boscher ND, et al.  Robust bio-inspired antibacterial surfaces based on the covalent binding of peptides on functional atmospheric plasma thin films. Journal of materials chemistry B. 2014;2:5168.
  • Park JM, Kim JH, Han JS, et al. Fabrication of Tapered Micropillars with High Aspect-Ratio Based on Deep X-ray Lithography. Materials. 2019;12:2056.
  • Bruk M, Zhikharev E, Rogozhin A, et al. Formation of micro-and nanostructures with well-rounded profile by new e-beam lithography principle. Microelectronic engineering. 2016;155:92.
  • Jiang Y, Luo B, Cheng X. Enhanced Thermal Stability of Thermoplastic Polymer Nanostructures for Nanoimprint Lithography. Materials. 2019;12:545.
  • Sharma V, Orejon D, Takata Y, et al. Gladiolus dalenii based bioinspired structured surface via soft lithography and its application in water vapor condensation and fog harvesting. Acs sustainable chemistry & engineering. 2018;6:6981.
  • Kumari N, Sood N, Krishnan V. Beetle wing inspired fabrication of nanojunction based biomimetic SERS substrates for sensitive detection of analytes. Materials Technology. 2020. p. 1.
  • Wang W, Yang G, Cui H, et al. Bioinspired pollen‐like hierarchical surface for efficient recognition of target cancer cells. Advanced healthcare materials. 2017;6:1700003.
  • Gürsoy M, Karaman M. Improvement of wetting properties of expanded perlite particles by an organic conformal coating. Progress in organic coatings. 2018;120:190.
  • Gürsoy M, Karaman M. Hydrophobic coating of expanded perlite particles by plasma polymerization. Chemical engineering journal. 2016;284:343.
  • Lau KK, Gleason KK. Particle functionalization and encapsulation by initiated chemical vapor deposition (iCVD). Surface and coatings technology. 2007;201:9189.
  • Gürsoy M, Özcan F, Karaman M. Improvement of carbon nanotube dispersion in electrospun polyacrylonitrile fiber through plasma surface modification. J Appl Polym Sci. 2019;136(31):47768.
  • Alf ME, Hatton TA, Gleason KK. Novel N-isopropylacrylamide based polymer architecture for faster LCST transition kinetics. Polymer. 2011;52:4429.
  • Gürsoy M, Harris M, Downing J, et al. Bioinspired fog capture and channel mechanism based on the arid climate plant Salsola crassa. Colloids and surfaces a: physicochemical and engineering aspects. 2017;529:195.
  • Gürsoy M, Harris M, Carletto A, et al. Bioinspired asymmetric-anisotropic (directional) fog harvesting based on the arid climate plant Eremopyrum orientale. Colloids and surfaces a: physicochemical and engineering aspects. 2017;529:959.
  • Wang F, Li S, Wang L. Fabrication of artificial super-hydrophobic lotus-leaf-like bamboo surfaces through soft lithography. Colloids and surfaces a: physicochemical and engineering aspects. 2017;513:389.
  • Lee Y, Dugansani SR, Jeon SH, et al. Natural and bioinspired nanostructured bactericidal surfaces. Scientific reports. 2017;7:9724.
  • Tripathy A, Sen P, Su B, et al. Advances in colloid and interface science. 2017;248:85.
  • Çıtak E, Testici H, Gürsoy M, et al. Vapor deposition of quaternary ammonium methacrylate polymers with high antimicrobial activity: Synthetic route, toxicity assessment, and durability analysis. Journal of vacuum science & technology a: vacuum, surfaces, and films. 2020;38:043203.
  • Bruel C, Queffeulou S, Darlow T, et al. Experimental methods in chemical engineering: Contact angles. The canadian journal of chemical engineering. 2019;97:832.
  • Wenzel RN. Surface roughness and contact angle. J phys chem. 1949;53(9):1466.
  • Cassie A, Baxter S. Transactions of the faraday society. Wettability of porous surfaces. 1944;40:546.
  • Karaman M, Çabuk N, Özyurt D, et al. Self-supporting superhydrophobic thin polymer sheets that mimic the nature's petal effect. Applied surface science. 2012;259:542.
  • Teare D, Spanos C, Ridley P, et al. Pulsed plasma deposition of super-hydrophobic nanospheres. Chemistry of materials. 2002;14:4566.
  • Beveridge TJ. Structures of gram-negative cell walls and their derived membrane vesicles. Journal of bacteriology. 1999;181:4725.
  • Pogodin S, Hasan J, Baulin VA, et al. Biophysical model of bacterial cell interactions with nanopatterned cicada wing surfaces. Biophysical journal. 2013;104:835.
  • Hasan J, Raj S, Yadav L, et al. RSC advances. Engineering a nanostructured “super surface” with superhydrophobic and superkilling properties. 2015;5:44953.

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