[1] | Peter Atkins, Entropy – a masterclass, Education in Chemistry, RSC Publications, Vol. 48, January issue, 2011. (http://www.rsc.org/Education/EiC/issues/2011January/EntropyAMasterclass.asp), © Hamish Kidd. |
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[2] | Reproduced by permission of The Royal Society of Chemistry from Educ. Chem., 2011, (http://www.rsc.org/Education/EiC/issues/2011January/EntropyAMasterclass.asp), © Hamish Kidd. |
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[3] | J. D. Cox and G. Pilcher, Thermochemistry of organic and organometllic compounds, Academic Press, New York (1970). |
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[4] | D. R. Stull, E. F. Westrum and G. C. Sinke, The chemical thermodynamics of organic compounds, Wiley, New York (1969). |
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[5] | R A Marcus, On the theory of oxidation-reduction reactions involving electron-transfer. I, J. Chem. Phys., 24, 966 (1956) |
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[6] | On the theory of oxidation-reduction reactions involving electron transfer. v. comparison and properties of electrochemical and chemical rate constants, J. Phys. Chem., 67, 853, (1963), Marcus equation: the slope of log k vs Eo. |
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[7] | See also for application of Marcus equation with a vareity of examples: The Marvelous Marcus equation: Distinguishing inner-sphere electron transfer reactions from outer-sphere electron transfer reactions: A one hour graduate class-room lecture, V. Jagannadham and R. Sanjeev, Bulgarian Chemical Communications, 42, 383 (2011). |
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[8] | Frank L. Lambert, A modern view of entropy, Chemistry (Khimiya, Bulgarian Journal of Education in Chemistry) 15, Issue 1 (2006) |
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[9] | S. Arrhenius, On the reaction rate of the inversion of non-refined sugar upon souring, Z. Phys. Chem., 4, 226 (1889). |
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[10] | M. Menzinger and R. Wolfgang, General account of the meaning and significance of the Arrhenius equation, Angew. Chem. Int. edn, 8, 438 (1969). |
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[11] | V. Jagannadham, How do we introduce the Arrhenius factor (A) to graduate students? Creative Education, Published by Scientific Research Publishing Inc (USA) 1, 128 (2010). |
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[12] | A. A. Frost and R. G. Pearson, Kinetics and Mechanism, Wiely Eastern, First reprint, New Delhi, page 71, (1971). |
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[13] | S. Glasstone, K. J. Laidler and H. Eyring, The theory of rate processes, McGraw-Hill (1941). |
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[14] | V. Jagannadham and S. Steenken, Reactivity of -heteroatom-substituted alkyl radicals with nitrobenzenes in aqueous solution: an entropy controlled electron transfer/addition mechanism, J. Am. Chem. Soc. 110, 2188 (1988). |
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[15] | V. Jagannadham and R. Sanjeev, The Marvelous Marcus equation: Distinguishing inner-sphere electron transfer reactions from outer-sphere electron transfer reactions: A one hour graduate class-room lecture, Bulgarian Chemical Communications, vol. 42, page 383-394 (2011). |
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[16] | G. Dulz and N. Sutin, The Kinetics of the Oxidation of Iron(II) and its Substituted tris(1,10- phenanthroline) Complexes by Cerium(IV), Inorg. Chem., 2, 917 (1963). |
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[17] | V. Jagannadham and S. Steenken, One-electron reduction of nitrobenzenes by α-hydroxyalkyl radicals via addition/elimination. An example of an organic inner-sphere electron-transfer reaction, J. Am. Chem. Soc, 106, 6542 (1984). |
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[18] | H. –J. Buschmann, E. Dutkiewicz and W. Knoche, Study of reversible addition of water to carbonyl compounds, Ber. Bunsen-Ges. Phys. Chem., 86, 129, (1982). |
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[19] | A. A. Frost and R. G. Pearson, Kinetics and Mechanism, Wiely, New York, page 300, (1961). |
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[20] | V. Jagannadham and S. Steenken, One-electron reduction of nitrobenzenes by hydroxyl and hydrogen radical adducts to 6-methyluracil and 6-methylisocytosine via electron transfer and addition/elimination: effect of substituents on rates and activation parameters for formation and heterolysis of nitroxyl-type tetrahedral intermediates. J. Phys. Chem. 92, 111 (1988). |
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[21] | R. Sanjeev and V. Jagannadham, Substituent effects on the spontaneous cleavage of benzyl-gem-dichlorides in aqueous solution, Indian J. Chemistry, 41B, 2145 (2002). |
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[22] | R. Sanjeev and V. Jagannadham, Substituent effects on the spontaneous cleavage of benzyl-gem-dibromides in aqueous solution, Indian J. Chemistry, 41A, 1841 (2002). |
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[23] | V. Jagannadham, The carbocation lifetimes and entropy for addition of water to carbocations that are dependent on carbocation stability: The significance of entropy for nucleophilic solvation of α-azidobenzyl carbocations, Indian Academy of Sciences, 115, 41 (2003). |
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[24] | G. R. Brandon, H. M. Frey and R. F. Skinner, Thermal isomerization of cyclobutenes. Part 8: Cis- and trans-1,2,3,4-tetramethylcyclobutene and bicyclo[4.2.0]oct-7-ene, Trans. Faraday Soc, 62, 1546 (1966). |
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[25] | L. Stein and G. W. Murphy, Kinetics of the Rearrangement of Isopropenyl Allyl Ether, J. Am. Chem. Soc., 74, 1041 (1952). |
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