Bioinspired self-repairing slippery surfaces with pressure-stable omniphobicity
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Barthlott, W. & Neinhuis, C. Purity of the sacred lotus, or escape from contamination in biological surfaces. Planta 202, 1–8 (1997)
Hansen, W. R. & Autumn, K. Evidence for self-cleaning in gecko setae. Proc. Natl Acad. Sci. USA 102, 385–389 (2005)
Gao, X. F. et al. The dry-style antifogging properties of mosquito compound eyes and artificial analogues prepared by soft lithography. Adv. Mater. 19, 2213–2217 (2007)
Epstein, A. K., Pokroy, B., Seminara, A. & Aizenberg, J. Bacterial biofilm shows persistent resistance to liquid wetting and gas penetration. Proc. Natl Acad. Sci. USA 108, 995–1000 (2011)
Tuteja, A., Choi, W., Mabry, J. M., McKinley, G. H. & Cohen, R. E. Robust omniphobic surfaces. Proc. Natl Acad. Sci. USA 105, 18200–18205 (2008)
Nguyen, T. P. N., Brunet, P., Coffinier, Y. & Boukherroub, R. Quantitative testing of robustness on superomniphobic surfaces by drop impact. Langmuir 26, 18369–18373 (2010)
Poetes, R., Holtzmann, K., Franze, K. & Steiner, U. Metastable underwater superhydrophobicity. Phys. Rev. Lett. 105, 166104 (2010)
Bohn, H. F. & Federle, W. Insect aquaplaning: Nepenthes pitcher plants capture prey with the peristome, a fully wettable water-lubricated anisotropic surface. Proc. Natl Acad. Sci. USA 101, 14138–14143 (2004)
Ahuja, A. et al. Nanonails: a simple geometrical approach to electrically tunable superlyophobic surfaces. Langmuir 24, 9–14 (2008)
Li, Y., Li, L. & Sun, J. G. Bioinspired self-healing superhydrophobic coatings. Angew. Chem. Int. Ed. Engl. 49, 6129–6133 (2010)
Lee, C. & Kim, C. J. Underwater restoration and retention of gases on superhydrophobic surfaces for drag reduction. Phys. Rev. Lett. 106, 014502 (2011)
Cassie, A. B. D. & Baxter, S. Wettability of porous surfaces. Trans. Faraday Soc. 40, 0546–0550 (1944)
Cassie, A. B. D. & Baxter, S. Large contact angles of plant and animal surfaces. Nature 155, 21–22 (1945)
Shafrin, E. G. & Zisman, W. A. Constitutive relations in the wetting of low energy surfaces and the theory of the retraction method of preparing monolayers. J. Phys. Chem. 64, 519–524 (1960)
Bauer, U. & Federle, W. The insect-trapping rim of Nepenthes pitchers: surface structure and function. Plant Signal. Behav. 4, 1019–1023 (2009)
Federle, W., Riehle, M., Curtis, A. S. G. & Full, R. J. An integrative study of insect adhesion: mechanics and wet adhesion of pretarsal pads in ants. Integr. Comp. Biol. 42, 1100–1106 (2002)
Courbin, L. et al. Imbibition by polygonal spreading on microdecorated surfaces. Nature Mater. 6, 661–664 (2007)
de Gennes, P.-G., Brochard-Wyart, F. & Quéré, D. Capillarity and Wetting Phenomena: Drops, Bubbles, Pearls, Waves 15–18 (Springer, 2003)
Pokroy, B., Epstein, A. K., Persson-Gulda, M. C. M. & Aizenberg, J. Fabrication of bioinspired actuated nanostructures with arbitrary geometry and stiffness. Adv. Mater. 21, 463–469 (2009)
Chen, W. et al. Ultrahydrophobic and ultralyophobic surfaces: some comments and examples. Langmuir 15, 3395–3399 (1999)
Delmas, M., Monthioux, M. & Ondarcuhu, T. Contact angle hysteresis at the nanometer scale. Phys. Rev. Lett. 106, 136102 (2011)
Furmidge, C. G. Studies at phase interfaces. 1. Sliding of liquid drops on solid surfaces and a theory for spray retention. J. Colloid Sci. 17, 309–324 (1962)
Ishino, C., Reyssat, M., Reyssat, E., Okumura, K. & Quéré, D. Wicking within forests of micropillars. Europhys. Lett. 79, 56005 (2007)
