
Barki, Kasturi Ganesh, Amitava Das, Sriteja Dixith, Piya Das Ghatak, Shomita S. Mathew‐Steiner, Elizabeth R. Schwab, Savita Khanna, Daniel J. Wozniak, Sashwati Roy, and Chandan K. Sen. “Electric Field Based Dressing Disrupts Mixed-Species Bacterial Biofilm Infection and Restores Functional Wound Healing.” Annals of Surgery 269, no. 4 (April 1, 2019): 756–66. https://doi.org/10.1097/sla.0000000000002504
Bezrukov, L. B., Zavarzina, V. P., Kurlovich, A. S., Lubsandorzhiev, B. K., Mezhokh, A. K., Morgaluk, V. P., & Sinev, V. V. (2018). On the Negatively Charged Layer of the Earth’s Electric Field. Doklady Physics, 63(5), 177–179. https://doi.org/10.1134/s1028335818050051
Biblab SH (14th September 2018)– Thunderstorm & Lightning – Roll: AE-044, MS Session: 2018-19, Department of Geology’ University of Dhaka – www.academia.edu/40815847/THUNDERSTORM_and_LIGHTNING_A_Brief_Discussion
Blakemore, Richard P., and Richard B. Frankel. “Magnetic Navigation in Bacteria.” Scientific American 245, no. 6 (December 1, 1981): 58–65. https://doi.org/10.1038/scientificamerican1281-58
Blanchard L, (30 September 2013). Impact of lightning on evolution, structure and function of bacterial communities. Other. Ecole Centrale de Lyon, 2013. English. https://theses.hal.science/tel-01024190
Chalmers, J. (1967). Positive charges from the Earth and the maintenance of the Earth’s fine-weather potential gradient. Journal of Atmospheric and Terrestrial Physics, 29(3), 307–310. https://doi.org/10.1016/0021-9169(67)90200-0
Chen, Y., Li, Q., Wu, W., Liu, X., Cheng, J., Deng, X., Cai, X., Yuan, W., Xie, J., Zhang, S., & Wang, B. (2022). Effects of Lightning on Rhizosphere Soil Properties, Bacterial Communities, and Active Components of Camellia sinensis var. assamica. Frontiers in Microbiology, 13. https://doi.org/10.3389/fmicb.2022.911226
Cherry NJ, (July 2002). Schumann Resonances, a plausible biophysical mechanism for the human health effects of Solar/Geomagnetic Activity – Natural Hazards 26, 279-331 (2002) – doi.org/10.1023/A:1015637127504. https://ideas.repec.org/a/spr/nathaz/v26y2002i3p279-331.html
Cherington, M., Wachtel, H., & Yarnell, P. R. (1998b). Could lightning injury be magnetically induced? Lancet, 351(9118), 1788. https://doi.org/10.1016/s0140-6736(05)78750-x
Christophides, T., Khan, S., Ahmad, M., Fayed, H., & Bogle, R. (2017). Cardiac effects of lightning strikes. Arrhythmia & Electrophysiology Review, 6(3), 114. https://doi.org/10.15420/aer.2017:7:3
Cimarelli, C., Genareau, K. (2022) A review of volcanic electrifcation of the atmosphere and volcanic lightning. J Volcanol Geotherm Res (Vol. 422). Elsevier B.V. – doi.org/10.1016/j.jvolg eores.2021.107449
Clarke, Dominic J, Heather M. Whitney, Gregory P. Sutton, and Daniel Robert. “Detection and Learning of Floral Electric Fields by Bumblebees.” Science 340, no. 6128 (April 5, 2013): 66–69. https://doi.org/10.1126/science.1230883
Clarke, Dominic J, Erica L. Morley, and Daniel Robert. “The Bee, the Flower, and the Electric Field: Electric Ecology and Aerial Electroreception.” Journal of Comparative Physiology A-Neuroethology Sensory Neural and Behavioral Physiology 203, no. 9 (June 24, 2017): 737–48. https://doi.org/10.1007/s00359-017-1176-6
Cohen, D. (1972). Magnetoencephalography: detection of the brain’s electrical activity with a superconducting magnetometer. Science 175, 664–666.
Crile, G., Glasser, O., Quiring, D.P. (September 1941). The heart and the red blood cells as generator and distributors of static electricity – The Ohio State University, Ohio Journal of Science: volume 41, issue 5, p. 347-356. https://kb.osu.edu/server/api/core/bitstreams/abd74639-0030-5796-9f9c-f46dfa56a92e/content
Da Silva, C. L., Salazar, S. D., Brum, C. G. M., & Terra, P. (2021b). Survey of electron density changes in the daytime ionosphere over the Arecibo Observatory due to lightning and solar flares. Scientific Reports, 11(1). https://doi.org/10.1038/s41598-021-89662-x
De Loof, A. (2016). The cell’s self-generated “electrome”: The biophysical essence of the immaterial dimension of Life? Communicative & Integrative Biology, 9(5), e1197446. https://doi.org/10.1080/19420889.2016.1197446
Demanèche, S., Bertolla, F., Buret, F., Nalin, R., Sailland, A., Auriol, P., Vogel, T. M., & Simonet, P. (2001). Laboratory-Scale evidence for Lightning-Mediated gene transfer in soil. Applied and Environmental Microbiology, 67(8), 3440–3444. https://doi.org/10.1128/aem.67.8.3440-3444.2001
Einthoven, W. (1924). https://www.britannica.com/biography/Willem-Einthoven
Hagedorn, M., & Heiligenberg, W. (1985). Court and spark: electric signals in the courtship and mating of gymnotoid fish. Animal Behaviour, 33(1), 254–265. https://doi.org/10.1016/s0003-3472(85)80139-1
Hess, B. L., Piazolo, S., & Harvey, J. (2021). Lightning strikes as a major facilitator of prebiotic phosphorus reduction on early Earth. Nature Communications, 12(1). https://doi.org/10.1038/s41467-021-21849-2
Hunting, E. R., O’Reilly, L. J., Harrison, R. G., Manser, K., England, S. J., Harris, B. H., & Robert, D. (2022b). Observed electric charge of insect swarms and their contribution to atmospheric electricity. iScience, 25(11), 105241. https://doi.org/10.1016/j.isci.2022.105241
Islam, F., & Ohga, S. (2012). The Response of Fruit Body Formation on Tricholoma matsutake In Situ Condition by Applying Electric Pulse Stimulator. ISRN Agronomy, 2012, 1–6. https://doi.org/10.5402/2012/462724
Lutz K, Cadiou H, Trevino T, Cinelli I (2022) Electromagnetic Fields to Sustain Life on Earth, in Space, and Planets, IAC-21-A1.19, 72 nd International Astronautical Congress (IAC), Dubai, United Arab Emirates. Published by the IAF. https://www.researchgate.net/publication/356474843_Electromagnetic_Fields_to_Sustain_Life_on_Earth_and_Beyond
MacIver, M. B. (2022). Consciousness and inward electromagnetic field interactions. Frontiers in Human Neuroscience, 16. https://doi.org/10.3389/fnhum.2022.1032339
Maghrabi, A. H. (2020). The effects of solar activity and geomagnetic disturbance on human health. Open Access Journal of Biomedical Science, 2(5). https://doi.org/10.38125/oajbs.000203
McFadden, J. (2020). Integrating information in the brain’s EM field: the cemi field theory of consciousness. Neuroscience of Consciousness, 2020(1). https://doi.org/10.1093/nc/niaa016
Meijer, Dirk Klaas Fokke, Igor Jerman, Alexey V. Melkikh and Valeriy I. Sbitnev. (2020). “Consciousness in the Universe is Tuned by a Musical Master Code, Part 3: A Hydrodynamic Superfluid Quantum Space Guides a Conformal Mental Attribute of Reality.” https://www.researchgate.net/profile/Dirk-Meijer-5/publication/341314209_Consciousness_in_the_Universe_is_Tuned_by_a_Musical_Master_Code_Part_1_A_Conformal_Mental_Attribute_of_Reality/links/5eba8e8d299bf1287f7fff14/Consciousness-in-the-Universe-is-Tuned-by-a-Musical-Master-Code-Part-1-A-Conformal-Mental-Attribute-of-Reality.pdf
Moskvitch, K. (2014). Lightning linked to solar wind. Nature. https://doi.org/10.1038/nature.2014.15229
Pockett, S. (2013). Field theories of consciousness. Scholarpedia Journal, 8(12), 4951. https://doi.org/10.4249/scholarpedia.4951
Prindle, A., Liu, J., Asally, M., Ly, S., Garcia-Ojalvo, J., & Süel, G. M. (2015). Ion channels enable electrical communication in bacterial communities. Nature, 527(7576), 59–63. https://doi.org/10.1038/nature15709
Price, C. (2016). ELF Electromagnetic Waves from Lightning: The Schumann Resonances. Atmosphere, 7(9), 116. https://doi.org/10.3390/atmos7090116
Price, C., Williams, E., Elhalel, G., & Sentman, D. D. (2020). Natural ELF fields in the atmosphere and in living organisms. International Journal of Biometeorology, 65(1), 85–92. https://doi.org/10.1007/s00484-020-01864-6
Rakov, V. A., & Uman, M. A. (2003). Lightning: Physics and effects. https://doi.org/10.1017/cbo9781107340886
Schumann, W. (1952). Über die Ausbreitung sehr langer elektrischer Wellen um die Erde und die Signale des Blitzes. Nuovo Cimento, 9(12), 1116–1138. https://doi.org/10.1007/bf02782924
Schumann, W., & König, H. (1954). Über die Beobachtung von Atmospherics bei geringsten Frequenzen. Naturwissenschaften, 41(8), 183–184. https://doi.org/10.1007/bf00638174
Shimizu, H., Hiraguri, T., Kimoto, M., Ota, K., Shindo, T., Hoshino, Y., & Takaki, K. (2020). Stimulatory growth effect of lightning strikes applied in the vicinity of shiitake mushroom bed logs. Journal of Physics. D, Applied Physics, 53(20), 204002. https://doi.org/10.1088/1361-6463/ab7627
Sheldrake, M. (2020). Book, “Entangled life, how fungi make our world, change our mind and shape the future.”
Stoupel, E. (2006). Cardiac arrhythmia and geomagnetic activity. Indian Pacing Electrophysiol J. 2006 Jan 1;6(1):49-53. PMID: 16943895; PMCID: PMC1501097.
Takaki, K., Yoshida, K., Saito, T., Kusaka, T., Yamaguchi, R., Takahashi, K., & Sakamoto, Y. (2014). Effect of electrical stimulation on fruit body formation in cultivating mushrooms. Microorganisms, 2(1), 58–72. https://doi.org/10.3390/microorganisms2010058
Voitsekhovskii, B. V., & Voitsekhovskii, M. B. (1979). The earth’s negative charge. Journal of Applied Mechanics and Technical Physics, 20(2), 185–186. https://doi.org/10.1007/bf00910019
Volland H. (1995). Book: Handbook of atmospheric electrodynamics – 526 Pages, ISBN 9781138559028
Van Wijk R (2014). Book, Light in shaping life, Biophotons in biology and medicine – ISBN/EAN 978-90818843-2-7
Warnke, U. (2008). Bees, Birds and Mankind – Kempten, 1st edition November 2007, ISBN: 978-3-00-023124-7 – English Edition, University of Saarland. https://www.powerwatch.org.uk/news/20080917_warnke_birds_bees.pdf
Widom, A., Swain, J., Srivastava, Y. N., & Sivasubramanian, S. (2011). Electromagnetic Signals from Bacterial DNA. arXiv (Cornell University). https://doi.org/10.48550/arxiv.1104.3113