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| | In 1989, electrochemists Martin Fleischmann and Stanley Pons of the University of Utah claimed to have produced such an effect loading a [[palladium]] cathode through electrolysis in heavy water, and some speculated that this might possibly become a source of cheap energy in the future. | | In 1989, electrochemists Martin Fleischmann and Stanley Pons of the University of Utah claimed to have produced such an effect loading a [[palladium]] cathode through electrolysis in heavy water, and some speculated that this might possibly become a source of cheap energy in the future. |
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| − | After Fleischmann and Pons made their claim, a number of attempts to replicate the effect failed, and the claim was generally discredited. However, work continued, and Mike McKubre of Stanford Research International, and Miles and Bush at the United States Navy China Lake Research Laboratory, showed that a deuterium to palladium loading ratio of greater than 90% was needed to see the effect. The initial failures at MIT and CalTech used loading of well under 80%. | + | After Fleischmann and Pons made their claim, a number of hasty attempts to replicate the effect failed, and the claim was generally discredited. However, work continued and Melvin Miles, at the United States Navy China Lake Research Laboratory, one of the original negative replicators, eventually found excess heat. Mike McKubre of Stanford Research International showed that a deuterium to palladium loading ratio of greater than 90% was needed to see the effect.<ref>McKubre, M.C.H., et al, [http://lenr-canr.org/acrobat/McKubreMCHexcesspowe.pdf Excess Power Observations in Electrochemical Studies of the D/Pd System; the Influence of Loading], 1992</ref> The initial failures at MIT and CalTech used loading of well under 80%. |
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| − | Further it has been shown that helium, in connection with the Fleischmann-Pons Heat Effect, is produced with a ratio to the anomalous heat that is commensurate with the ratio expected from some form of deuterium fusion to helium (though this ratio would be found with any reaction that starts with deuterium and ends with helium). This field is being actively researched today (circa 2012). | + | Further Miles later found that helium, in connection with the Fleischmann-Pons Heat Effect, is produced with a ratio to the anomalous heat that is commensurate with the ratio expected from some form of deuterium fusion to helium (though this ratio would be found with any reaction that starts with deuterium and ends with helium). |
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| − | The field has been covered in many academic publications in recent years, including a review by Edmund Storms, "Status of cold fusion (2010)," ''Naturwissenschaften,'' October 2010. [http://lenr-canr.org/acrobat/StormsEstatusofcoa.pdf (preprint)] | + | The field, still being actively researched, has been covered in many academic publications in recent years, including a featured review by Edmund Storms, "Status of cold fusion (2010)," in ''Naturwissenschaften,'' October 2010.<ref>[http://lenr-canr.org/acrobat/StormsEstatusofcoa.pdf Status of cold fusion (2010) (preprint)]</ref> The abstract of this review included: |
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| − | Research is ongoing in many laboratories around the world. There are also companies claiming to have working demonstration devices, claiming power levels that could see commercial usage; however there is no open independent evidence that these devices work, and some cold fusion researchers are skeptical of the claims.
| + | :''The evidence supports the claim that a nuclear reaction between deuterons to produce helium can occur in special materials without application of high energy. This reaction is found to produce clean energy at potentially useful levels without the harmful byproducts normally associated with a nuclear process.'' |
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| − | The field has expanded from deuterium in palladium to also include hydrogen in nickel and nickel nano-powder, low energy glow discharge experiments and transmutation experiments (mostly in Japan). Research funding sources in the US include the Defense Advanced Research Projects Administration (DARPA), and the Department of Defense, Threat Reduction Agency. | + | Springer-Verlag is the second largest scientific publisher in the world, and ''Naturwissenschaften'' is their "flagship multidisciplinary journal," published since 1913. The appearance of this review in a mainstream peer-reviewed journal is a milestone in the recognition of cold fusion, after so many years of neglect. |
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| | + | Research is ongoing in many laboratories around the world. |
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| | + | The field has expanded from deuterium in palladium to also include hydrogen in nickel and nickel nano-powder, low energy glow discharge, and transmutation experiments (mostly in Japan). Research funding sources in the US include the Defense Advanced Research Projects Administration (DARPA), and the Department of Defense, Threat Reduction Agency. |
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| | + | There are also companies claiming to have working Nickel-hydrogen demonstration devices, claiming power levels that could see commercial usage; however there is no open independent evidence that these devices work reliably, only enthusiasm, promises from the companies -- often not met -- and some public demonstrations that convinced some, but that were also flawed in ways that eventually led to extended skepticism even from those who have accepted cold fusion in general. |
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| | The next international conference will be the 17th International Conference on Cold Fusion in Deajeon, Korea, August 12-17, 2012. | | The next international conference will be the 17th International Conference on Cold Fusion in Deajeon, Korea, August 12-17, 2012. |