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{{Infobox paper
{{Infobox paper
| title = Exotic Material as Interactions Between Scalar Fields
| title = Exotic Material as Interactions Between Scalar Fields
| url = [https://web.archive.org/web/20060621190836/http://ptep-online.com/index_files/2006/PP-05-06.PDF Link to paper (Internet Archive)]
| author = [[Glen A Robertson]]
| author = [[Glen A Robertson]]
| keywords = [[Exotic Material]], [[Interactions]], [[Scalar Fields]]
| keywords = [[Exotic Material]], [[Interactions]], [[Scalar Fields]]
| published = 2006
| published = 2006
| journal = [[Progress In Physics]]
| journal = [[Progress In Physics]]
| volume = [[2]]
| volume = 2
| pages = 24-30
| pages = 24-30
}}
}}
'''Read the full paper''' [https://web.archive.org/web/20060621190836/http://ptep-online.com/index_files/2006/PP-05-06.PDF here] ''(archived copy — the original link is no longer available)''


==Abstract==
==Abstract==


Many theoretical papers refer to the need to create exotic materials with average negative energies for the formation of space propulsion anomalies such as ?wormholes? and ?warp drives?. However, little hope is given for the existence of such material to resolve its creation for such use. From the standpoint that non-minimally coupled scalar fields to gravity appear to be the current direction mathematically. It is proposed that exotic material is really scalar field interactions. Within this paper the Ginzburg-Landau (GL) scalar fields associated with superconductor junctions is investigated as a source for negative vacuum energy fluctuations, which could be used to study the interactions among energy fluctuations, cosmological scalar (i. e., Higgs) fields, and gravity.[[Category:Scientific Paper]]
Many theoretical papers refer to the need to create exotic materials with average negative energies for the formation of space propulsion anomalies such as "wormholes" and "warp drives". However, little hope is given for the existence of such material to resolve its creation for such use. From the standpoint that non-minimally coupled scalar fields to gravity appear to be the current direction mathematically. It is proposed that exotic material is really scalar field interactions. Within this paper the Ginzburg-Landau (GL) scalar fields associated with superconductor junctions is investigated as a source for negative vacuum energy fluctuations, which could be used to study the interactions among energy fluctuations, cosmological scalar (i. e., Higgs) fields, and gravity.
 
[[Category:Scientific Paper|exotic material interactions scalar fields]]


[[Category:Gravity]]
[[Category:Gravity|exotic material interactions scalar fields]]
[[Category:New Energy]]
[[Category:New Energy|exotic material interactions scalar fields]]
[[Category:Aether]]
[[Category:Aether|exotic material interactions scalar fields]]
[[Category:Unified Theory]]
[[Category:Unified Theory|exotic material interactions scalar fields]]

Latest revision as of 13:58, 22 July 2026

Scientific Paper
TitleExotic Material as Interactions Between Scalar Fields
Read in fullLink to paper (Internet Archive)
Author(s)Glen A Robertson
KeywordsExotic Material, Interactions, Scalar Fields
Published2006
JournalProgress In Physics
Volume2
Pages24-30

Read the full paper here (archived copy — the original link is no longer available)

Abstract

Many theoretical papers refer to the need to create exotic materials with average negative energies for the formation of space propulsion anomalies such as "wormholes" and "warp drives". However, little hope is given for the existence of such material to resolve its creation for such use. From the standpoint that non-minimally coupled scalar fields to gravity appear to be the current direction mathematically. It is proposed that exotic material is really scalar field interactions. Within this paper the Ginzburg-Landau (GL) scalar fields associated with superconductor junctions is investigated as a source for negative vacuum energy fluctuations, which could be used to study the interactions among energy fluctuations, cosmological scalar (i. e., Higgs) fields, and gravity.