[1] | Sun T, Feng L, Gao X, Jiang L (2005) Bioinspired surfaces with special wettability. Acc Chem Res 38: 644–652.
|
[2] | Wagner P, Neinhuis C, Barthlott W (1996) Wettability and contaminability of insect wings as a function of their surface sculptures. Acta Zoologica 77: 213–225.
|
[3] | Cong Q, Chen G-H, Fang Y, Ren L-Q (2004) Study on the super-hydrophobic characteristic of butterfly wing surface. J Bionics Eng 1: 249–255.
|
[4] | Gorb SN, Kesel A, Berger J (2000) Microsculpture of the wing surface in Odonata: Evidence for cuticular wax covering. Arthropod Structure & Development 29: 129–135.
|
[5] | Watson GS, Myhra S, Cribb BW, Watson JA (2008) Putative function(s) and functional efficiency of ordered cuticular nano-arrays on insect wings. Biophys J 94: 3352–3360.
|
[6] | Holdgate MW (1955) The wetting of insect cuticles by water. J Exp Biol 32: 591–617.
|
[7] | Gao X, Jiang L (2004) Water-repellent legs of water striders. Nature 432: 36.
|
[8] | Feng X-Q, Gao X, Wu Z, Jiang L, Zheng Q-S (2007) Superior water repellency of water strider legs with hierarchical structures: Experiments and analysis. Langmuir 23: 4892–4896.
|
[9] | Watson GS, Cribb BW, Watson JA (2010) Experimental determination of the efficiency of nanostructuring on non-wetting legs of the water strider. Acta Biomaterialia 6: 4060–4064.
|
[10] | Hu H-MS, Watson GS, Cribb BW, Watson JA (2011) Non wetting wings and legs of the cranefly aided by fine structures of the cuticle. J Exp Biol 214: 915–920.
|
[11] | Parker AR, Lawrence CR (2001) Water capture by a desert beetle. Nature 414: 33–34.
|
[12] | Cassie ABD, Baxter S (1944) Wettability of porous surfaces. Trans Faraday Soc 49: 546–551.
|
[13] | Gao L, McCarthy TJ (2007) How Wenzel and Cassie were wrong. Langmuir 23: 3762–3765.
|
[14] | Wenzel RN (1936) Resistance of solid surfaces to wetting by water. Ind Eng Chem 28: 988–994.
|
[15] | Herminghaus S (2000) Roughness-induced non-wetting. Europhys Lett 52: 165–170.
|
[16] | Shirtcliffe NJ, McHale G, Newton MI (2010) An introduction to superhydrophobicity. Adv Colloid Interface Sci 161: 124–138.
|
[17] | van Achterberg K, Aspock H, Aspock U, Baderson J, Britton EB, et al. (1991) The Insects of Australia: A Textbook for Students and Research Workers. Victoria: Melbourne University Press. Vol. 1.
|
[18] | Pearce MJ (1997) Termites Biology and Pest Management. UK: CAB International. 172 p.
|
[19] | Watson GS, Cribb BW, Watson JA (2010) How micro/nanoarchitecture facilitates anti-wetting: An elegant hierarchiacal design on the termite wing. ACS Nano 4: 129–136.
|
[20] | Nalepa CA, Miller LR, Lenz M (2001) Flight characteristics of Mastotermes darwiniensis (Isoptera, Mastotermitidae). Insectes soc 48: 144–148.
|
[21] | Gorb S (2001) Attachment Devices of Insect Cuticle. New York: Kluwer Academic Publishers. pp. 21–36.
|
[22] | Marden JH, Kramer MG (1994) Surface-skimming stoneflies: A possible intermediate stage in insect flight evolution. Science 266: 427–430.
|
[23] | Masters WM, Eisner T (1990) The escape strategy of green lacewings from orb webs. J Insect Behaviour 3: 143–157.
|
[24] | Roonwal ML (1985) Wing microsculpturing in termites (Isoptera) under the Scanning Electron Microscope. Zool Anz Jena 215: 219–230.
|
[25] | Rathore NS (1977) Third study of evolution and systematic significance of wing micro-sculpturing in termites. Micrasters in some Thinotermitidae and Termitidae. Zool Anz 198: 298–312.
|
[26] | Rathore NS (1974) On a new systematic character in termites, the microsters. Z Zool Syst Evolutionsforsch Berlin 12: 55–76.
|
[27] | Bhushan B, Jung YC (2011) Natural and biomimetic artificial surfaces for superhydrophobicity self-cleaning, low adhesion, and drag reduction. Progress in Materials Science 56: 1–108.
|
[28] | Bhushan B, Jung YC (2008) Wetting, adhesion and friction of superhydrophobic and hydrophilic leaves and fabricated micro/nanopatterned surfaces. J Phys: Condens Matter 20: 225010 (24pp).
|
[29] | Kesel AB (2000) Aerodynamic characteristics of dragonfly wing sections compared with technical aerofoils. J Exp Biol 203: 3125–3135.
|
[30] | Watson GS, Watson JA (2004) Natural nano-structures on insects - Possible functions of ordered arrays characterized by atomic force microscopy. App Surf Sci 235: 139–144.
|
[31] | Zinkl GM, Zwiebel BI, Grier DG, Preuss D (1999) Pollen-stigma adhesion in Arabidopsis: A species-specific interaction mediated by lipophilic molecules in the pollen exine. Development 126: 5431–5440.
|
[32] | Blach-Watson JA, Watson GS, Brown CL, Myhra S (2004) UV patterning of polyimide: Differentiation and characterization of surface chemistry and structure. App Surf Sci 235: 164–169.
|
[33] | Cleveland JP, Manne S, Bocek D, Hansma PK (1993) A non-destructive method for determining the spring constant of cantilevers for Scanning Force Microscopy. Rev Sci Instrum 64: 403–405.
|
[34] | Watson GS, Dinte BP, Blach JA, Myhra S (2002) Demonstration of atomic scale stick-slip events stimulated by the force versus distance mode using atomic force microscopy. J Phys D – Appl Phys 35: 2066–2074.
|
[35] | Watson GS, Blach JA, Cahill C, Nicolau DV, Pham DK, et al. (2004) Interactions of poly(amino acids) in aqueous solution with charged model surfaces – Analysis by colloidal probe. Biosensors & Bioelectronics 19: 1355–1362.
|