[1] Vogel M J, Steen P H. Capillarity-based switchable adhesion [J]. Proceedings of the National Academy of Sciences USA, 2010, 107(8): 3 377-3 381.[2] Stork N E. A scanning electron microscope study of tarsal adhesive setae in the Coleoptera [J]. Zoological Journal of the Linnean Society, 1980, 68:173-306.[3] Hanna G, Barnes W J P. Adhesion and detachment of the toe pads of tree frogs [J]. Journal of Experimental Biology, 1991, 155: 103-125.[4] Walker G. Adhesion to smooth surfaces by insects: a review [J]. International Journal of Adhesion and Adhesives, 1993, 13 (1):3-7.[5] Autumn K, Liang Y A, Hsieh S T, et al. Adhesive force of a single gecko foot-hair [J]. Nature, 2000, 405:681-685.[6] Beutel R G, Gorb S N. Ultrastructure of attachment specializations of hexapods (Arthropoda): evolutionary patterns inferred from a revised ordinal phylogeny [J]. Journal of Zoological Systematics and Evolutionary Research, 2001, 39:177-207.[7] Bullock J M R, Federle W. Beetle adhesive hairs differ in stiffness and stickiness: in vivo adhesion measurements on individual setae [J]. Naturwissenschaften, 2011, 98 (5):381-387.[8] Liu Z, Liang A P. Ultrastructure of the tarsus in Oides decempunctatus (Billberg) (Coleoptera: Chrysomelidae) [J]. Journal of the Kansas Entomological Society, 2013, 86(2):122-132.[9] 张学书, 梁爱萍. 三种蝇类昆虫(双翅目)足爪垫结构的超微形态研究 [J]. 动物分类学报. 2012, 37 (4): 694-700.[10] Weirauch C. Hairy attachment structures in Reduviidae (Cimicomorpha, Heteroptera), with observations on the fossula spongiosa in some other Cimicomorpha [J]. Zoologischer Anzeiger, 2007, 246:155-175.[11] Edwards J S. Observations on the development and predatory habit of two reduviid Heteroptera, Rhinocoris carmelita Stal and Platymeris rhadamanthus Gerst [J]. Proceedings of the Royal Entomological Society of London A, 1962, 37: 89-98.[12] Gorb S, Scherge M. Biological microtribology: anisotropy in frictional forces of orthopteran attachment pads reflects the ultrastructure of a highly deformable material [J]. Proceeding of the Royal Society of London Series B, 2000, 267 (1449):1 239-1 244.[13] Gorb S, Jiao Y, Scherge M. Ultrastructural architecture and mechanical properties of attachment pads in Tettigonia viridissima (Orthoptera Tettigoniidae) [J]. Journal of Comparative Physiology A, 2000, 186 (9):821-831.[14] Bullock J M R, Federle W. The effect of surface roughness on claw and adhesive hair performance in the dock beetle Gastrophysa viridula [J]. Insect Science, 2011, 18:298-304.[15] Federle W. Why are so many adhesive pads hairy?[J]. Journal of Experimental Biology, 2006, 209 (14):2611-2621.[16] Autumn K, Sitti M, Liang Y A, et al. Evidence for van der waals adhesion in gecko setae [J]. Proceedings of the National Academy of Sciences USA, 2002, 99:12 252-12 256.[17] Autumn K, Dittmore A, Santos D, et al. Frictional adhesion: a new angle on gecko attachment [J]. Journal of Experimental Biology, 2006, 209:3 569-3 579.[18] Geiselhardt S F, Lamm S, Gack C, et al. Interaction of liquid epicuticular hydrocarbons and tarsal adhesive secretion in Leptinotarsa decemlineata Say (Coleoptera: Chrysomelidae) [J]. Journal of Comparative Physiology A, 2010, 196:369-378.[19] Betz O. Structure of the tarsi in some Stenus species (Coleoptera, Staphylinidae): external morphology, ultrastructure, and tarsal secretion [J]. Journal of Morphology, 2003, 255 (1):24-43.[20] Nelson D R, Adams T S, Fatland C L. Hydrocarbons in the surface wax of eggs and adults of the colorado potato beetle, Leptinotarsa decemlineata [J]. Comparative Biochemistry and Physiology Part B, 2003, 134:447-466.[21] Federle W, Riehle M, Curtis A S G, et al. An integrative study of insect adhesion: mechanics and wet adhesion of pretarsal pads in ants [J]. Integrative and Comparative Biology, 2002, 42:1 100-1 106.[22] Dirks J H, Clemente C J, Federle W. Insect tricks: two-phasic foot pad secretion prevents slipping [J]. Journal of the Royal Society Interface, 2010, 7:587-593.[23] Langer M G, Ruppersberg J P, Gorb S. Adhesion forces measured at the level of a terminal plate of the fly's seta [J]. Proceeding of the Royal Society of London Series B, 2004, 271(1554):2 209-2 215.[24] Arzt E, Gorb S, Spolenak R. From micro to nano contacts in biological attachment devices [J]. Proceedings of the National Academy of Sciences USA, 2003, 100 (29):10 603-10 606.[25] 陈少华, 苏爱嘉. 生物黏附与仿生黏附力学的进展 [J]. 力学与实践,2007, 29 (2): 9-17.[26] 戴振东, 孙久荣. 壁虎的运动及仿生研究进展 [J]. 自然科学进展,2006, 16 (5): 519-523. |