Low energy nuclear reactions are possible in condensed matter because of image forces. They result from induced charges at the surface of metals or very polarizable media. The height and width of the Coulomb barrier in free space can thus be reduced. Nuclear fusion requires also the formation of a compound nucleus in one of its excited states, but two deuterons yield an α particle that has 2 excited states. They are respectively accessible at high or low energies. Since the reduction of the Coulomb barrier depends on the local curvature of the interface, cold fusion becomes autocatalytic, but heat production is controllable. Even microbes, plants and animals can produce transmutations. They are also due to image forces. This solves a basic problem in nuclear physics and there are possible applications: facilitated synthesis of superheavy elements and development of a new type of energy sources. They are moderate, but safe.
KeywordsCold FusionNuclear ReactionsBiological TransmutationsCoulomb BarrierImage ForceSuperheavy ElementsNew Energy Source
Pons, S. and Fleischmann, M. (1989) Cold Fusion Press Conference at Utah University, Video. https://www.youtube.com/watch?v=6CfHaeQo6oU
Huizenga, J. (1992) Cold Fusion: The Scientific Fiasco of the Century. University of Rochester Press, Rochester.
Taubes, G. (1993) Bad Science: The Short Life and Weird Times of Cold Fusion. Random House Inc., New York. https://doi.org/10.1063/1.2809041
Vysotskii, V. and Kornilova, A. (2010) Nuclear Transmutation of Stable and Radioactive Isotopes in Biological Systems. Motilal (UK) Books of India, St Albans.
Storms, E. (2007) The Science of Low Energy Nuclear Reaction, a Comprehensive Compilation of Evidence and Explanations about Cold Fusion. World Scientific, Singapore. https://doi.org/10.1142/6425
Storms, E. (2014) The Explanation of Low Energy Nuclear Reactions. Infinite Energy Press, Gainesville.
Gabovich, A.M. (2010) Physics and Technology of Surface, 1, 72-86.
Toriyabe, Y., Mizuno, T., Ohmori, T. and Aoki, Y. (2006) Elemental Analysis of Palladium Electrodes after PD/PD Light Water Critical Electrolysis. Proceedings of the 12th International Conference on Cold Fusion, Yokohama, 27 November-2 December 2005, 253-263. https://doi.org/10.1142/9789812772985_0025
Dash, J., Kopecek, R. and Miguet, S. (1997) Excess Heat and Unexpected Elements from Aqueous Electrolysis with Titanium and Palladium Cathodes. Proceedings of the 32nd Intersociety Energy Conversion Engineering Conference, Honolulu, 27 July-1 August 1997, 1350-1355. https://doi.org/10.1109/IECEC.1997.661965
Iyengar, P.K. (1989) Proc. 5th Intern. Conf. on Emerging Nuclear Energy Systems, Karlsruhe.
Mizuno, T. and Toriyabe, Y. (2005) ICCF-12, Intern. Conf. Condensed Matter Sc.
Rutherford, E. (1919) Philosophical Magazine, 37, 59-66.
Campbell, J. (2019). https://cerncourier.com/a/rutherford-transmutation-and-the-proton
Bohr, N. (1936) Nature, 137, 344-348. https://doi.org/10.1038/137344a0
Breit, G. and Wigner, E. (1936) Physical Review, 49, 519-544. https://doi.org/10.1103/PhysRev.49.519
Olkhovski, S.V., et al. (2008) Open Physics, 6, 122-127. https://doi.org/10.2478/s11534-008-0071-8
Bacca, S., et al. (2014) Is the First Excited State of α Particles a Breathing Mode?
Mizuno, T., et al. (1996) Journal of New Energy, 1, 37-44.
Armbruster, P. and Münzenberg, G. (1989) Creating Superheavy Elements. Scientific American, May, 66-72. https://doi.org/10.1038/scientificamerican0589-66
Prout, W. (1822) Phil. Trans.
Kervran, L. (1960) Revue Generale des Sciences, 67, 193-206.
Bakker, R. (1986) The Dinosaur Heresies. New Theories Unlocking the Mystery of the Dinosaurs and Their Extinction. Zebra, New York.
Sanders, M., et al. (2011) Biological Reviews, 86, 117-155. https://doi.org/10.1111/j.1469-185X.2010.00137.x
Armstrong, W.P. (1995) Plants from Jurassic Park. https://www.waynesword.net/ww0803.htm
Epstein, E. (1994) PNAS, 91, 11-17. https://doi.org/10.1073/pnas.91.1.11
Trembath-Reichert, E.T., et al. (2015) PNAS, 112, 5449-5454. https://doi.org/10.1073/pnas.1500289112
Galileo, G. (1638) Discourses and Mathematical Demonstrations Relating to Two New Sciences.
Barcia, G. (2006) Physics of Life Reviews, 3, 188-209. https://doi.org/10.1016/j.plrev.2006.07.002
Campione, N.E. and Evans, D. (2012) BMC Biology, 10, Article No. 60. https://doi.org/10.1186/1741-7007-10-60
Horner, J.R., et al. (2005) How Dinosaurs Grew So Large and So Small. Scientific American, August, 56-63.
Stein, K., et al. (2019) Scientific Reports, 9, Article No. 4424. https://www.nature.com/articles/s41598-019-40604-8.pdf
Wings, O. (2004) PHD Thesis on Gastroliths. https://www.dinosaurhunter.org/files/dissertation-wings-2004-identification__distribution__and_function_of_gastroliths.pdf
Wings, O. and Sander, P.M. (2007) Proceedings of the Royal Society B: Biological Sciences, 274, 675-640. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2197205/ https://doi.org/10.1098/rspb.2006.3763
Carlisle, E.M. (1986) Silicon as an Essential Trace Element in Animal Nutrition. In: Evered, D. and O’Connor, M., Eds., Ciba Foundation Symposium 121—Silicon Biochemistry: Silicon Biochemistry: Ciba Foundation Symposium 121, CIBA Foundation, Indianapolis, 123-129. https://doi.org/10.1002/9780470513323.ch8 https://massamllc.com/wp-content/uploads/2013/12/Silicon-in-Animals-Carlslile.pdf
Price, C.T., et al. (2013) International Journal of Endocrinology, 2013, Article ID: 316783. https://doi.org/10.1155/2013/316783
Jugdaohsingh, R. (2007) The Journal of Nutrition, Health & Aging, 11, 99-110.
Farooq, M.A. and Dietz, K.J. (2015) Frontiers in Plant Science, 6, Article No. 994. https://doi.org/10.3389/fpls.2015.00994
Vysotskii, V.I. and Kornilova, A.A. (2019) Journal of Condensed Matter Nuclear Science, 28, 7-20.
Yum, K.J., et al. (2019) Journal of Condensed Matter Nuclear Science, 28, 1-6.
Vysotskii, V.I. and Kornilova, A.A. (2013) Annals of Nuclear Energy, 62, 626-633. https://doi.org/10.1016/j.anucene.2013.02.008
Mullen, M.D., et al. (1989) Applied and Environmental Microbiology, 55, 3143-3149. https://doi.org/10.1128/aem.55.12.3143-3149.1989
Mustapha, M.U. and Halimoon, N. (2015) Journal of Microbial & Biochemical Technology, 7, 253-256. https://doi.org/10.4172/1948-5948.1000219
Jin, M., et al. (2019) AMB Express, 9, Article No. 138. https://doi.org/10.1186/s13568-019-0862-x
Osman, G.E.H., et al. (2019) Journal of Pure and Applied Microbiology, 13, 13-26. https://doi.org/10.22207/JPAM.13.1.02
Planck, M.K. (1950) Scientific Autobiography and Other Papers. Philosophical Library, New York, 24. https://doi.org/10.2307/40089223
Meessen, A. (2021) Journal of Modern Physics, 12, 1573-1605. https://doi.org/10.4236/jmp.2021.1211094
Hossenfelder, S. (2023) What’s Going Wrong in Particle Physics. YouTube.
Meessen, A. (2018) Journal of Modern Physics, 9, 2657-2724. https://doi.org/10.4236/jmp.2018.914165
Meessen, A. (2020) Journal of Modern Physics, 11, 2011-2052. https://doi.org/10.4236/jmp.2020.1112128