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12. plastoglobule (drop of lipids)
 
12. plastoglobule (drop of lipids)
 
]][[Andrew McIntosh (professor)|A.McIntosh]] as creationist however declares that the decrease in [[entropy]] is generally possible, but there are [[nanomachines]] (which he differentiates from [[natural forces]] and attributes to outcome of [[design]] thus [[intelligence]]) necessary to achieve for that effect, and he even tries to demonstrate it with examples that the [[chemical bonds]] between [[nucleotides]] in [[DNA]] require an extra so called [[Gibbs free energy]] to take part in the process, an this extra energy can be provided in his view only by means of these [[molecular machines]]. He argues that if, for example, [[guanine]] and [[cytosine]], i.e. [[nucleotides]] paired in DNA, would be placed in a [[Petri dish]], they would refrain from bonding together as there is no machine (such as [[Molecular tweezer]]) to provide a free energy in a specific way to enable that bond to take place. Further on he points out that after [[living organism]] dies and these machines cease working, the DNA starts falling apart even while still being exposed to extra [[energy]]. Thus, he believes [[natural selection]] has no power to create new functional structures such as [[DNA]] or information [[biopolymer]], respectively, without which fertilized eggs would not turn into babies. Likewise, he refers to [[photosynthesis]] as to process that again requires functional machine (biological mini-factory) for which he holds the leaf containing [[photosynthesis#Photosynthetic membranes and organelles|photosynthetic membranes and organelles]] as a whole capable to raise locally a [[Gibbs free energy]], thus effectively catalyzing the chemical reaction and enabling photosynthesis to happen.<nowiki><ref>McIntosh, A.C.: Functional Information and Entropy in living system, pp.115-126, Design and Nature III: Comparing Design in Nature with Science and Engineering , Vol 87 of WIT Transactions on Ecology and the environment, Editor Brebbia C.A., WIT Press, 2006.</ref></nowiki>}}
 
]][[Andrew McIntosh (professor)|A.McIntosh]] as creationist however declares that the decrease in [[entropy]] is generally possible, but there are [[nanomachines]] (which he differentiates from [[natural forces]] and attributes to outcome of [[design]] thus [[intelligence]]) necessary to achieve for that effect, and he even tries to demonstrate it with examples that the [[chemical bonds]] between [[nucleotides]] in [[DNA]] require an extra so called [[Gibbs free energy]] to take part in the process, an this extra energy can be provided in his view only by means of these [[molecular machines]]. He argues that if, for example, [[guanine]] and [[cytosine]], i.e. [[nucleotides]] paired in DNA, would be placed in a [[Petri dish]], they would refrain from bonding together as there is no machine (such as [[Molecular tweezer]]) to provide a free energy in a specific way to enable that bond to take place. Further on he points out that after [[living organism]] dies and these machines cease working, the DNA starts falling apart even while still being exposed to extra [[energy]]. Thus, he believes [[natural selection]] has no power to create new functional structures such as [[DNA]] or information [[biopolymer]], respectively, without which fertilized eggs would not turn into babies. Likewise, he refers to [[photosynthesis]] as to process that again requires functional machine (biological mini-factory) for which he holds the leaf containing [[photosynthesis#Photosynthetic membranes and organelles|photosynthetic membranes and organelles]] as a whole capable to raise locally a [[Gibbs free energy]], thus effectively catalyzing the chemical reaction and enabling photosynthesis to happen.<nowiki><ref>McIntosh, A.C.: Functional Information and Entropy in living system, pp.115-126, Design and Nature III: Comparing Design in Nature with Science and Engineering , Vol 87 of WIT Transactions on Ecology and the environment, Editor Brebbia C.A., WIT Press, 2006.</ref></nowiki>}}
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<ref>Compare: "… there are no known violations of the second law of thermodynamics. Ordinarily the second law is stated for isolated systems, but the second law applies equally well to open systems. … There is somehow associated with the field of far-from-equilibrium thermodynamics the notion that the second law of thermodynamics fails for such systems. It is important to make sure that this error does not perpetuate itself." John Ross, Chemical and Engineering News, 7 July 1980, p. 40:</ref>
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== References ==
 
== References ==
 
{{Reflist}}
 
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