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Theoretical Study of the Reaction of (2, 2)-Dichloro (Ethyl) Arylphosphine with Bis (2, 2)-Dichloro (Ethyl) Arylphosphine by Hydrophosphination Regioselective by the DFT Method

DOI: 10.4236/cc.2017.53010, PP. 113-128

Keywords: Hydrophosphination, Phosphine, HOMO, LUMO, Fukui Index, Transition State

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Abstract:

For this work, we have selected two reactions for the formation of (2,2)-dichloro (ethyl) Arylphosphine and bis (2,2)-dichloro(ethyl)arylphosphine compounds by hydrophosphination. Global and local reactivity parameters, thermodynamic parameters of reactions, Transition states, the Fukui function, the local softness, the local electrophility index, and nucleophility index, Natural population analyses (NPA) and Mulliken (MK) were calculated with DFT method at B3LYP/6-311+G(d, p) level. The analysis of potential energy surfaces and the nature of the reaction mechanism have been determined. The various results obtained revealed that the addition of Arylphosphine is regiospecific. The phenylphosphine is more stable than the thiophenylphosphine. The theoretical results are consistent with experience.

References

[1]  Sharma, S.B., Sayyed, R.Z., Trivedi, M.H. and Gobi, T.A. (2013) Phosphate Solubilizing Microbes: Sustainable Approach for Managing Phosphorus Deficiency in Agricultural Soils. Springerplus, 2, 587.
https://doi.org/10.1186/2193-1801-2-587
[2]  Nigam, S., Burke, B.P., Davies, L.H., Domarkas, J., Wallis, J., Waddell, F.P.G., Waby, J.S., Benoit, D.M., Seymour, A., Cawthorne, C., Higham, L.J. and Archibald, S.J. (2016) Structurally Optimised BODIPY Derivatives for Imaging of Mitochondrial Dysfunction in Cancer and Heart Cells. Chemical Communications (Cambridge), 52, 7114-7117.
https://doi.org/10.1039/C5CC08325G
[3]  Katti, K.V., Pillarsetty, N. and Raghuraman, K (2003) New Vistas in Chemistry and Applications of Primary Phosphines. Topics in Current Chemistry, 229, 121-141.
https://doi.org/10.1007/b11153
[4]  Clark, T.J., Rodezno, J.M., Clendenning, S.B., Aouba, S., Brodersen, P.M., Lough, A.J., Ruda, H.E. and Manners, I. (2005) Rhodium Dehydrocoupling of Fluorinated Phosphine-Borane Adducts: Synthesis, Characterization, and Properties of Cyclic and Polymeric Phosphinoboranes with Electron-Withdrawing Substituents at Phosphorus. Chemistry: A European Journal, 11, 4526-4534.
https://doi.org/10.1002/chem.200401296
[5]  Xiao, Y., Sun, Z., Guo, H. and Kwon, O. (2014) Chiral Phosphines in Nucleophilic Organocatalysis. Beilstein Journal of Organic Chemistry, 10, 2089-2121.
[6]  Clarke, T.P. and Landis, C.R. (2004) Recent Developments in Chiral Phospholane Chemistry. Tetrahedron Asymmetry, 15, 2123-2137.
https://doi.org/10.1016/j.tetasy.2004.06.025
[7]  Hoge, G. and Samas, B. (2004) Application of P-Chirogenic Bisphospholane Ligands to Rhodium Catalyzed Asymmetric Hydrogenation of α- and β-Acetamido Dehydroamino Acid Derivatives. Tetrahedron: Asymmetry, 15, 2155-2157.
https://doi.org/10.1016/j.tetasy.2004.04.041
[8]  Brauer, D.J., Kottsieper, K.W., Roβenbach, S. and Stelzer, O. (2003) Novel P,N Ligands Derived from (R)- and (S)-1-Phenylethylamine with (2R,5R)-2,5-Dimethylphospholanyl Groups (DuPHAMIN) for Asymmetric Catalysis. European Journal of Inorganic Chemistry, 2003, 1748-1755.
https://doi.org/10.1002/ejic.200200388
[9]  Herrbach, A., Marinetti, A., Baudoin, O., Guénard, D. and Gueritte, F.J. (2003) Asymmetric Synthesis of an Axially Chiral Antimitotic Biaryl via an Atropo-Enantioselective Suzuki Cross-Coupling. Journal of Organic Chemistry, 68, 4897-4905.
[10]  Benié, A., Dénis, J.M. and Békro, Y.A. (2010) Synthesis of Free and Complexes 2,2 Dichloro(ethyl)Arylphosphine and bis(2,2)Dichloro(ethyl)Arylphosphine by Regioselective Hydrophosphination. European Journal of Scientific Research, 47, 164-168.
http://www.lablcbosn.com/wp-content/uploads/2015/09/ejsr_47_2_01.pdf
[11]  Frisch, M.J., Trucks, G.W., Schlegel, H.B., Scuseria, G.E., Robb, M.A., Cheeseman, J.R., Montgomery, Jr., J.A., Vreven, T., Kudin, K.N., Burant, J.C., Millam, J.M., Iyengar, S.S., Tomasi, J., Barone, V., Mennucci, B., Cossi, M., Scalmani, G., Rega, N., Petersson, G.A., Nakatsuji, H., Hada, M., Ehara, M., Toyota, K., Fukuda, R., Hasegawa, J., Ishida, M., Nakajima, T., Honda, Y., Kitao, O., Nakai, H., Klene, M., Li, X., Knox, J.E., Hratchian, H.P., Cross, J.B., Adamo, C., Jaramillo, J., Gomperts, R., Stratmann, R.E., Yazyev, O., Austin, A.J., Cammi, R., Pomelli, C., Ochterski, J.W., Ayala, P.Y., Morokuma, K., Voth, G.A., Salvador, P., Dannenberg, J.J., Zakrzewski, V.G., Dapprich, S., Daniels, A.D., Strain, M.C., Farkas, O., Malick, D.K., Rabuck, A.D., Raghavachari, K., Foresman, J.B., Ortiz, J.V., Cui, Q., Baboul, A.G., Clifford, S., Cioslowski, J., Stefanov, B.B., Liu, G., Liashenko, A., Piskorz, P., Komaromi, I., Martin, R.L., Fox, D.J., Keith, T., Al-Laham, M.A., Peng, C.Y., Nanayakkara, A., Challacombe, M., Gill, P.M.W., Johnson, B., Chen, W., Wong, M.W., Gonzalez, C. and Pople, J.A. (2004) Gaussian 03, Revision C. 01. Gaussian Inc., Wallingford.
[12]  Becke, A.D. (1993) A New Mixing of Hartree-Fock and Local Density-Functional Theories. Journal of Chemical Physics, 98, 1372-1377.
https://doi.org/10.1063/1.464304
[13]  Parr, R.G. and Yang, W. (1989) Density-Functional Theory of Atoms and Molecules. Oxford University Press, New York, Oxford.
[14]  De Castro, E.V.R. and Jorge, F.E. (1998) Accurate Universal Gaussian Basis Set for All Atoms of the Periodic Table. Journal of Chemical Physics, 108, 5225-5229.
https://doi.org/10.1063/1.475959
[15]  Parr, R.G. and Pearson, R.G. (1983) Absolute Hardness: Companion Parameter to Absolute Electronegativity. Journal of the American Chemical Society, 105, 7512-7516.
https://doi.org/10.1021/ja00364a005
[16]  Yang, W. and Parr, R.G. (1985) Hardness, Softness, and the Fukui Function in the Electronic Theory of Metals and Catalysis. Proceedings of the National Academy of Sciences, 82, 6723-6726.
https://doi.org/10.1073/pnas.82.20.6723
[17]  Chattaraj, P.K., Sarka, U.R. and Roy, D.R. (2006) Electrophilicity Index. Chemical Reviews, 106, 2065-2091.
https://doi.org/10.1021/cr040109f
[18]  Domingo, L.R., Aurell, M.J., Perez, P. and Contreras, R. (2002) Quantitative Characterization of the Global Electrophilicity Power of Common Diene/Dienophile Pairs in Diels-Ald Reactions. Tetrahedron, 58, 4417-4423.
[19]  Domingo, L.R., Chamorro, E. and Pérez, P. (2008) Understanding the Reactivity of Captodative Ethylenes in Polar Cycloaddition Reactions. A Theoretical Study. The Journal of Organic Chemistry, 73, 4615-4624.
https://doi.org/10.1021/jo800572a
[20]  Parr, R.G., von Szentpaly, L. and Liu, S. (1999) Electrophilicity Index. Journal of the American Chemical Society, 121, 1922-1924.
https://doi.org/10.1021/ja983494x
[21]  Delgado, J.S., Aizman, A., Domingo, L.R. and Contreras, R. (2010) Understanding the Influence of Lewis Acids in the Regioselectivity of the Diels-Alder Reactions of 2-Methoxy-5 Methyl 1,4 Benzoquinone: A DFT Study. Chemical Physics Letters, 449, 272.
[22]  Parr, R.G. and Yang, W. (1984) Perspective on Density Functional Approach to the Frontier-Electron Theory of Chemical Reactivit. Journal of the American Chemical Society, 106, 4049-4050.
[23]  Domingo, L.R. and Saez, J.A. (2009) Understanding the Mechanism of Polar Diels-Alder Reactions. Organic and Biomolecular Chemistry, 7, 3576-3583.
https://doi.org/10.1039/b909611f
[24]  Toledo, O.R. and Contreras, R. (2014) Philicity and Fugality Scales for Organic Reactions. Advances in Chemistry, 2014, 1-13.
[25]  Reed, A.E. and Weinhold, F. (1983) Natural Atomic Orbitals and Natural Population Analysis. Journal of Chemical Physics, 78, 4066-4073.
https://doi.org/10.1063/1.445134
[26]  Domingo, L.R., Aurell, M.J., Perez, P. and Contreras, R. (2000) Quantitative Characterization of the Local Electrophilicity of Organic Molecules. Understanding the Regioselectivity on Diels-Alder Reactions. Journal of Chemical Physics, 106, 6871-6875.
https://doi.org/10.1021/jp020715j
[27]  Yan, W.G. and Parr, R.G. (2000) Hardness, Softness, and the Fukui Function in the Electronic Theory of Metals and Catalysis. Proceedings of the National Academy of Sciences, 82, 6723-6726.
[28]  Mendez, F. and Gazquez, J.L. (1994) Chemical Reactivity of Enolate Ions: The Local Hard and Soft Acids and Bases Principle Viewpoint. Journal of the American Chemical Society, 116, 9298-9301.
https://doi.org/10.1021/ja00099a055
[29]  Reed, A. and Weinhold, E.F. (1983) Natural Atomic Orbitals and Natural Population Analysis. Journal of Chemical Physics, 78, 4066-4073.
[30]  Reed, A.E., Weinstock, R.B. and Weinhold, F. (1985) Natural Atomic Orbitals and Natural Population Analysis. Journal of Chemical Physics, 83, 735-746.
https://doi.org/10.1063/1.449486
[31]  Besler, B.H., Merz, K.M.J. and Kollman, P.A. (1990) Atomic Charges Derived from Semi Empirical Methods. Journal of Computational Chemistry, 11, 431-439.
https://doi.org/10.1002/jcc.540110404

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