Chemical kinetics: A Discipline and a Mechanistic Tool
Abstract
Full Text:
PDFReferences
Arnaut, L., Formosinho, S. and Burrows, H (2007): Chemical Kinetics from Molecular Structure to Chemical Reactivity, Elsevier B.V., Amsterdam, pp 1, 4, 31, 49 and 83.
Atkins, P., & Jones, L. (1999). Chemical principles: the quest for insight, New York, W. H. Freeman, pp 595–600, 613–627.
Atkins, P. W. and de Paula. J. (2010): Physical Chemistry, Ninth Edition, W. H. Freeman Publisher, New York, pp 1, 770, 771, 782–810 and 878–880.
Bakac, A. (2010): Physical inorganic chemistry: Principles, methods, and models. John Wiley and Sons, Inc., New Jersey, pp 67–78.
Basolo F. and Johnson, R. C. (1986): Coordination Chemistry, Second Edition, pp 97–119.
Bellouquid A. and Delitala M. (2006): Mathematical Modeling of Complex Biological Systems: A Kinetic Theory Approach, Birkhauser, Boston, USA, pp 1–56.
Bhattacharyya, J., Das, S. and Mukhopadhyay, S. (2007): Mechanistic Studies on Oxidation of L-Ascorbic Acid by an μ–Oxo–bridged Diiron Complex in Aqueous Acidic Media, Dalton Transaction, 12: 1214–1220.
Bhattacharyya, J., Dutta, K. and Mukhopadhyay, S. (2004): Mechanistic studies on oxidation of hydrazine by a μ-oxo diiron(III,III) complex in aqueous acidic media–proton coupled electron transfer, Dalton Transaction, 18: 2910–2917.
Bhattacharyya, J. and Mukhopadhyay, S. (2005): Mechanistic Studies on the Oxidation of Nitrite by a µ-Oxodiiron(III, III) Complex in Aqueous Acidic Media, Helvetica Chimica Acta, 88: 2661–2674.
Bo G. M. and Bertil A. (2103): The Nobel Prize in Chemistry: The Development of Modern Chemistry, Retrieved from http://www.nobelprize.org/nobel_prizes/chemistry/articles/malmstrom/.
Busari A., Iyun J. F., and Idris S. O. (2016): Kinetics and mechanism of the oxidation of 3,7-bis(dimethylamino)phenothionium chloride (methylene blue) by bromate ion in aqueous hydrochloric acid medium. International Journal of Science for Global Sustainability, 2(3): 13–20.
Chinake, C. R. and Simoyi, R. H. (1998): Oxyhalogen-Sulfur Chemistry: Kinetics and
Mechanism of the Formation of Bromamines from the Reaction between Acidic Bromate and Aminomethanesulfonic Acid, Journal of Physical Chemistry B,102: 10490–10497.
Coker, K. A. (2001): Modeling of Chemical Kinetics and Reactor Design, Gulf Publishing
Company, Houston, Texas, U. S. A., pp xvii, xviii and 1–36.
Connors, K. A. (1990): Chemical Kinetics: The Study of Reaction Rates in Solution, VCH Publisher, Inc., New York, pp 1.
Daintith, J. (ed.) (2008): Oxford Dictionary of Chemistry, Appendix 7: Nobel Prizes in
Chemistry, Sixth Edition, Oxford University Press, UK, Pp 576–582.
Dave, J. A., & Shah, S. S. (2008). 2–Hydroxy–3– iodo–4–n–butoxy–5–bromopropiophenone oxime as an analytical reagent for copper(II). Asian Journal of Chemistry, 20(6), 4185–4190.
Deepa, D. and Chandramohan, G. (2012): Kinetic and Mechanistic Study on the Oxidation of
Indole-3-PropionicAcid in Acetic Acid Medium, Research Journal of Chemical Sciences, 2(10): 70–74.
De Levie, R. (2002): Spreadsheet Simulation of Chemical Kinetics, Critical Reviews in Analytical Chemistry, 32(1):97–107
De Oliveira, L. P., Hudebine, D., Guillaume, D. and Verstraete, J. J. (2016): A Review of Kinetic Modeling Methodologies for Complex Processes, Oil & Gas Science and Technology – Review IFP Energies nouvelles, 71(45): 1–49.
Denisov, E. T, Sarkisov, O. M, and Likhtenshtien, G. I. (2003): Chemical Kinetics: Fundamentals and New Developments, Elsevier Science BV., Amsterdam, Pp v, 1.
Dixon D. A. and Shafer, R. H. (1973): Computer Simulation of Kinetics by the Monte Carlo Technique, Journal of Chemical Education, 50(9): 648 – 650.
Edwards, J. O., & Fleischauer, P. D. (1968). The double-isotope-label technique and inorganic reaction mechanisms. Inorganica Chimica Acta, 53–63.
Espenson, J. H. (1995): Chemical Kinetics and Reaction Mechanisms, Second Edition, New York, McGraw-Hill, pp 3, 125–132 and 253–269.
Ferner, R. E. and Aronson, J. K. (2016): Cato Guldberg and Peter Wage: The History of the
Law of Mass Action and its Relevance to Clinical Pharmacology, 81(1): 52–55.
Froment, G. F., Bischoff, K. B. and De Wilde, J. (2011): Chemical Reactor Analysis and
Design, Third Edition, John Wiley & Sons, Inc. pp 11–13 and 21–23.
Gadkariem, E. A., Ibrahim, K. E. E., Kamil, N. A. A., Haga, M. E. M. and El-Obeid, H. A.
(2009): A new spectrophotometric method for the determination of methyldopa, Saudi Pharmaceutical Journal, 17: 289–293.
Gao, Q., Wang, G., Sun,Y., & Epstein, I.R. (2008). Simultaneous tracking of sulphur species in the oxidation of thiourea by hydrogen peroxide, Journal of Physical Chemistry A, 112, 5771–5773.
Ghosh, M. K. and Rajput, S. K. (2012): Kinetics and Mechanism of Rhodium(III) Catalyzed Oxidation of Dextrose by Cerium(IV) in Aqueous Acidic Medium, Chemical Sciences Journal, Vol.77: 1–10.
Groenhof, G. (2013). Solving chemical problems with a mixture of quantum-mechanical and molecular mechanics calculations: Nobel Prize in chemistry 2013, Angewandte Chemie, International Edition, 52(48): 2–5.
Hammes, G. G. (1978): Principles of Chemical Kinetics, Academic Press, Inc., New York, pp 1–8.
House J. E. (2007): Principles of Chemical Kinetics, Second Edition, Elsevier Inc., USA, pp 167 – 169 and 182–185.
House, J. E., (2008). Inorganic Chemistry, USA, Elsevier, pp 229–232, 255–283, 309–313,
- 494, 523, 673 and 755, 807–808.
Houston, P. L. (2001): Chemical Kinetics and Reaction Dynamics, Dover Publications, Inc.
Mineola, New York, pp xii–xv.
Ivanovic´-Burmazovic, I. (2011): New era of reaction mechanisms in inorganic and bioinorganic chemistry, Bioinorganic Reaction Mechanism, 7(1-4): 3–4.
Jonnalagadda, S. B. and Gollapalli, N. R. (1999): Studies on Toluidine Blue Reaction with Sulfite in Aqueous Solution and Role of Cu(II) as Promoter, International Journal of Chemical Kinetics, 31(5): 539–549.
Jordan R. B. (2007): Reaction Mechanisms of Inorganic and Organometallic Systems, Third
Edition, Oxford University Press,UK, Pp 1–42, 253–285.
Karunakaran, C., Ramachandran, V. and Palanisamy, P. N. (1999): Linear Free Energy Relationship in Complex Reaction: Tungsten(VI) Catalyzed Perborate Oxidation of S-Phenylmercaptoacetic Acids, International Journal of Chemical Kinetics, 31(9): 675–681.
Krenos, J. and Potenza, J. (2013): Study Guide to Accompany Chemical Principles – The Quest for Insight, Sixth Edition, W.H. Freeman and Company, USA, pp 94, 95.
Kundu, S., Bhattacharya, A. K., & Banerjee, R. (1996). Kinetics of oxidation of nitrogen(III) by an oxo-bridged dinuclear manganese(III, IV) complex in weakly acidic media, Journal of Chemical Society: Dalton Transactions, 3951–3957.
Leroy, F., Ronneau,C. and Demortier, G. (2003):A Century of Nobel Prizes Recipients–
Chemistry, Physics and Medicine, Marcel Dekker, Inc. Spain, pp 13–111.
Levenspiel O. (1999): Chemical Reaction Engineering, Third Edition, John Wiley & Sons,
Inc, USA, p 1.
Manafov, M. R. (2015). Development of a software application for solving of problems of chemical kinetics and its implementation in a C#. International Journal of Engineering and Applied Sciences, 2(10), 33–37.
Mandal, P. C., Bhattacharyya, J., Das S. Mukhopadhyay, S. and Kirschenbaum, L. J. (2009):
Mechanistic studies on the oxidation of pyruvic acid by an oxo-bridged diiron(III,III) complex in aqueous acidic media, Polyhedron, 28: 3162–3168.
Mehrotra, M. and Mehrotra, R. N. (2003): The kinetics of the oxidation of thiourea by 12-
tungstocobaltate(III) ion: evidence for anionic, neutral and protonated thiourea species in acetic acid–acetate buffer and perchloric acid solution, Dalton Transaction, 3606–3611.
Morrison, R. T. and Boyd, R. N. (1992): Organic Chemistry, Sixth Edition, Prentice Hall, New Jersey, pp 45, 46.
Nimse, S. B.., Song, K-S and Kim, T. (2012): Water-Soluble Calix[4]arene Derivatives:
Binding Stoichiometry and Spectroscopic Evaluation of the Host-Guest Recognition Mechanism, In: Stoichiometry and Research–The Importance of Quantity in Biomedicine, 28–46.
Olcese, L. E. and Toselli, B. M. (1998): Fast and Reliable Numerical Methods to Simulate Complex Chemical Kinetic Mechanisms, International Journal of Chemical Kinetics, 30: 349–358.
Pyun, C. W. (1971). Steady-state and equilibrium approximations in chemical kinetics, Journal of Chemical Education, 48(3), 194–196.
Qin Q. (2013): Dynamics of a Discrete Lotka–Volterra Model, Advances in Difference Equation, 95: 1–13.
Rabai, G. Wang, R. T., & Kustin, K. (1993). Kinetics and mechanism of the oxidation of thiourea by chlorine dioxide, International Journal of Chemical Kinetics, 25, 53-62.
Ramirez, F. de M. and Garcia-Sosa, I. (2012): Stoichiometric Ratio in Calixarene Complexes,
Refbacks
- There are currently no refbacks.