Sources of Electric  spiderwebs

Balmori, A. (2021). Electromagnetic radiation as an emerging driver factor for the decline of insects. The Science of the Total Environment767, 144913. https://doi.org/10.1016/j.scitotenv.2020.144913

Barth FG (2020) A spider in motion: facets of sensory guidance. J Comp Physiol A Neuroethol Sens Neural Behav Physiol. https://doi.org/10.1007/s00359-020-01449-z

Bathellier, B., Barth, F. G., Albert, J. T., & Humphrey, J. a. C. (2005). Viscosity-mediated motion coupling between pairs of trichobothria on the leg of the spider Cupiennius salei. Journal of Comparative Physiology A191(8), 733–746. https://doi.org/10.1007/s00359-005-0629-5

Blandenier G (2009) Ballooning of spiders (Araneae) in Switzerland: general results from an eleven-year survey. Arachnology 14(7):308–316. https://doi.org/10.13156/arac.2009.14.7.308

Bowker, G. E. & Crenshaw, H. C. Electrostatic forces in wind-pollination? Part 2: Simulations of pollen capture. Atmosph. Environ. 41, 1596–1603 (2007).

Cho M (2020) Suspension of a point-mass-loaded filament in non-uniform flows: the ballooning flight of spiders. Dissertation, Technical University of Berlin

Cho M, Koref IS (2020) The importance of a filament-like structure in aerial dispersal and the rarefaction effect of air molecules on a nanoscale fiber: detailed physics in spiders’ ballooning. Integr Comp Biol 60:864–875. https://doi.org/10.1093/icb/icaa063

Cho, M. Aerodynamics and the role of the earth’s electric field in the spiders’ ballooning flight. J Comp Physiol A 207, 219–236 (2021). https://doi.org/10.1007/s00359-021-01474-6

Crosby CR, Bishop SC (1936) Aeronautic spiders with a description of a new species. J N Y Entomol Soc 1:43–49

French A., Torkkeli P. (2015) Some recent advances in spider sensory physiology. Silk spinner, sharp-sensed predator, ecological police… – an arthropod with superpowers – Physiology News Issue 99/ summer 2015, University of Birmingham, Dalhousie University, Canada

Gorham PW (2013) Ballooning spiders: the case for electrostatic flight. arXiv:1309.4731v2

Hunting ER, Harrison RG, Bruder A, van Bodegom PM, van der Geest HG, Kampfraath AA, Vorenhout M, Admiraal W, Cusell C, Gessner MO – Atmospheric electricity influencing biogeochemical processes in soils and sediments. Front Physiol 10 – doi.org/10.3389/fphys.2019.00378 – 2019

Hunting ER, Matthews J, de Arróyabe Hernáez PF, et al – Challenges in coupling atmospheric electricity with biological systems – Int J Biometeorol 65, 45–58 (2021) –  https://doi.org/10.1007/s00484-020-01960-7

Kulkarni M, Kamra AK (2001) Vertical profiles of atmospheric electric parameters close to ground. J Geophys Res 106:28209–28221. https://doi.org/10.1029/2000JD000147

Lázaro, A., & Chroni, A. (2016). Electromagnetic Radiation Affects the Behavior of Terrestrial Arthropods. Scientific Reports, 6, Article 20357. https://doi.org/10.1038/srep20357

Levitt, B. B., Lai, H. C., & Manville, A. M. (2021). Effects of non-ionizing electromagnetic fields on flora and fauna, Part 2 impacts: how species interact with natural and man-made EMF. Reviews on Environmental Health37(3), 327–406. https://doi.org/10.1515/reveh-2021-0050

Martin, G. H. P. W., & Lindauer, M. (1982). “Magnetic influences on the web-building behavior of the garden spider Araneus diadematus.” Journal of Comparative Physiology A, 146(4), 401-406. [DOI: 10.1007/BF00612615]

Mcgonigle, D. F., Jackson, Ch. W. & Davidson, J. L. Triboelectrification of houseflies (Musca domestica L.) walking on synthetic dielectric surfaces. J. Electrost. 54, 167–177 (2002).

Morley EL, Robert D (2018) Electric fields elicit ballooning in spiders. Curr Biol 28:2324-2330.e2. https://doi.org/10.1016/j.cub.2018.05.057

Opell, B. D. Do static electric forces contribute to the stickiness of a spider’s cribellar prey capture threads? J. Exp. Zool. 273, 186–189 (1995).

Orlov VM, Romanenko VN – The Effect of Industrial Electric Field on Spiders of the Families Salticidae and Lycosidae- Published in: Biol Nauki 1989; 7: 66-70

Ortega-Escobar, J. (2011). “Role of the anterior lateral eyes of the wolf spider Lycosa tarantula in the detection of the Earth’s magnetic field.” Journal of Comparative Physiology A, 197(2), 119-129. [DOI: 10.1007/s00359-010-0594-1]

Ortega-Jimenez VM, Dudley R (2013) Spiderweb deformation induced by electrostatically charged insects. Sci Rep 3:2108. https://doi.org/10.1038/srep02108

Osborn CD. Treatment of spider bites by high voltage direct current. J Okla State Med Assoc. 1991 Jun;84(6):257-60. PMID: 1875275.

Osborn CD. Treatment of venomous bite by high voltage direct current. J Okla State Med Assoc. 1990 Jan;83(1):9-14. PMID: 2308019.

Osborn CD. More on spider bites and stun guns. J Okla State Med Assoc, 86(1):40, 01 Jan 1993. PMID: 8426245

Ben Welch E, Gales BJ. Use of stun guns for venomous bites and stings: a review. Wilderness Environ Med. 2001 Summer;12(2):111-7. doi: 10.1580/1080-6032(2001)012[0111:uosgfv]2.0.co;2. Erratum in: Wilderness Environ Med 2001 Fall;12(3):221. PMID: 11434486.

Palmer, R. A., Chenchiah, I. V., & Robert, D. (2021). Analysis of aerodynamic and electrostatic sensing in mechanoreceptor arthropod hairs. Journal of Theoretical Biology530, 110871. https://doi.org/10.1016/j.jtbi.2021.110871 

Palmer, R. A., Chenchiah, I. V., & Robert, D. (2022). Passive electrolocation in terrestrial arthropods: Theoretical modelling of location detection. Journal of Theoretical Biology558, 111357. https://doi.org/10.1016/j.jtbi.2022.111357

Rachwał, M., Rybak, J., & Rogula-Kozłowska, W. (2017b). Magnetic susceptibility of spider webs as a proxy of airborne metal pollution. Environmental Pollution234, 543 – 551. https://doi.org/10.1016/j.envpol.2017.11.088 

Ursem B – Dierckx-Lecture about the link between electricity and trees – Nederlandse Dendrologische Vereniging – 2008

Samu, F., Szita, É., Botos, E. et al. Agricultural spider decline: long-term trends under constant management conditions. Sci Rep 13, 2305 (2023). https://doi.org/10.1038/s41598-023-29003-

Steven E, Park JG, Paravastu A, Lopes EB, Brooks JS, Englander O, Siegrist T, Kaner P, Alamo RG (2011) Physical characterization of functionalized spider silk: electronic and sensing properties. Sci Technol Adv Mater 12:55002. https://doi.org/10.1088/1468-6996/12/5/055002

Vacha, Martin, ‘Magnetoreception of Invertebrates’, in John H. Byrne (ed.), The Oxford Handbook of Invertebrate Neurobiology, Oxford Handbooks (2019; online edn, Oxford Academic, 6 Feb. 2017), https://doi.org/10.1093/oxfordhb/9780190456757.013.16, accessed 14 Oct. 2024.

Vemulapalli GK, Kukolich SG (1996) Why does a stream of water deflect in an electric field? J Chem Educ 73:887–888. https://doi.org/10.1021/ed073p887

Vollrath, F., & Edmonds, D. (2013). Consequences of electrical conductivity in an orb spider’s capture web. The Science of Nature100(12), 1163–1169. https://doi.org/10.1007/s00114-013-1120-8 – Het cirkelweb van de kruisspin Araneus diadematus is elektrisch geleidend. We onderzoeken hoe deze geleidbaarheid van de vangspiraal kan leiden tot de insluiting van geladen deeltjes in de lucht, zoals pollen, neveldruppels en zelfs insecten. Verder beschrijven en modelleren we hoe de geleidende spiraal ook lokaal het elektrische veld van de aarde zal verstoren. 

Walker MM – Magnetic orientation and the magnetic sense in arthropods – PubMed: 9415992 – Experimental Biology Research Group, School of Biological Sciences, University of Auckland, New Zealand p. 187-213 – 1997

Youtube 01 – https://www.sciencemag.org/news/2014/01/video-spiders-spin-electric-web

Youtube 02 – https://www.youtube.com/watch?v=PQJud3Eh0tk

Youtube 03 – http://natgeotv.com/in/the-amazing-spider-house/videos/static-electric-spider-web

Youtube 04 – https://www.bristol.ac.uk/news/2018/july/spiders-electric-fields-.html

Youtube 05 – https://m.youtube.com/watch?v=GRrUxi6d7so

Youtube 06 – https://cosmosmagazine.com/biology/spiders-fly-using-electricity-not-wind

Youtube 07 – https://www.theatlantic.com/science/archive/2018/07/the-electric-flight-of-spiders/564437/

Youtube 08 – https://m.youtube.com/watch?v=PQJud3Eh0tk

Youtube 09 – https://m.youtube.com/watch?v=GRrUxi6d7so

Youtube 10 – https://m.youtube.com/watch?v=x4ed7Y5Xffg

Youtube 11 – https://m.youtube.com/watch?v=oxUhkA2zyKo

Youtube 12 – https://m.youtube.com/watch?v=iV_HsWWt6_o

Youtube 13 – https://www.youtube.com/watch?v=Ja4oMFOoK50

Youtube 14 – https://getpocket.com/explore/item/spiders-can-fly-hundreds-of-miles-using-electricity?utm_source=pocket-newtab

YoutTube 16 – https://www.youtube.com/watch?v=ELUHWCc8UR8

YoutTube 17 – https://www.youtube.com/watch?v=0EkEsTafD38

Zhang, Y., Zhang, W., & He, S. (2020). “Cryptochrome gene expression in the brains of tarantulas (Aphonopelma hentzi): A possible mechanism for magnetoreception.” Frontiers in Zoology, 17(1), 1-8. [DOI: 10.1186/s12983-020-00380-6]

Ziaei-Moayyed M, Goodman E, Williams P (2000) Electrical deflection of polar liquid streams: a misunderstood demonstration. J Chem Educ 77:1520. https://doi.org/10.1021/ed077p1520