K. Dharmalingam This email address is being protected from spambots. You need JavaScript enabled to view it.1, K. Ramachandran2 , P. Sivagurunathan3 , B. Prabhakar Undre4 , P. W. Khirade4 and S. C. Mehrotra5

1Department of Physics, School of Science and Humanities, Karunya University, Karunya Nagar, Coimbatore-641 114, Tamilnadu, India
2Department of Physics, SRM University, Kattankulathur-603 203, Tamilnadu, India
3Department of Physics, Annamalai University, Annamalai Nagar-608 002, Tamilnadu, India
4Microwave Research Laboratory, Department of Physics, Dr. B. A. M. University, Aurangabad - 431 004, Maharashtra, India
5Department of Computer Science and Information Technology, Dr. B. A. M. University, Aurangabad - 431 004, Maharashtra, India


 

Received: May 1, 2006
Accepted: March 12, 2007
Publication Date: June 1, 2009

Download Citation: ||https://doi.org/10.6180/jase.2009.12.2.03  


ABSTRACT


A dielectric relaxation study on alcohols-ethyl methacrylate binary mixtures has been carried out at different concentrations and temperatures using Time Domain Reflectometry (TDR). The Least Squares fit method has been used to obtain the dielectric parameters (the static dielectric constant ε0 and relaxation time τ). By using these parameters, the Bruggeman factor, the Kirkwood correlation factor and excess inverse relaxation time were determined and discussed to yield information on the molecular structure and dynamics of the mixture. The ε0 and τ values decreased with an increase in the % of ethyl methacrylate in alcohols for all the systems. The value of the τ increased with an increase in chain-length of the alcohols whereas the reverse trend is observed for ε0.


Keywords: Dielectric Relaxation, Time Domain Reflectometry, Alcohols


REFERENCES


  1. [1] Schildknecht, C. E., Vinyl and Related Polymers, Wiley, New York (1977).
  2. [2] Savage, P. E., “Organic Chemical Reactions in Supercritical Water,” Chem. Rev., Vol. 99, pp. 603621 (1999).
  3. [3] Shirke, R. M., Chaudhari, A., More, N. M. and Patil, P. B., “Dielectric Measurements on Methyl Acetate + Alcohol Mixtures at (288, 298, 308, and 318) K Using the Time Domain Technique,” J. Chem. Eng. Data, Vol. 45, pp. 917919 (2000).
  4. [4] Chaudhari, A., Shirke, R. M., More, N. M. and Patil, P. B., “Dielectric Study of n-Butyl AcetateAlcohol Mixtures by Time-Domain Reflectometry,” J. Sol. Chem., Vol. 31, pp. 305315 (2002).
  5. [5] Shirke, R. M., Chaudhari, A., More, N. M. and Patil, P. B., “Temperature Dependent Dielectric Relaxation Study of Ethyl Acetate – Alcohol Mixtures Using Time Domain Technique,” J. Mol. Liq., Vol. 94, pp. 2736 (2001).
  6. [6] Chaudhari, A. and Mehrotra, S. C., “Dielectric Relaxation Study of Pyridine-Alcohol Mixtures using Time Domain Reflectometry”, Mol. Phys., Vol. 100, pp. 39073913 (2002).
  7. [7] Patil, S. P., Chaudhari, A. S., Lokhande, M. P., Lande, M. K., Shankarwar, A. G., Helambe, S. N., Arbad, B. R. and Mehrotra, S. C., “Dielectric Measurements of Aniline and Alcohol Mixtures At 283, 293, 303, and 313 K Using the Time Domain Technique,” J. Chem. Eng. Data, Vol. 44, pp. 875878 (1999).
  8. [8] Balamurugan, D., Kumar, S. and Krishnan, S., “Dielectric Relaxation Studies of Higher Order Alcohol Complexes with Amines using Time Domain Reflectometry,” J. Mol. Liq., Vol. 122, pp. 1114 (2005).
  9. [9] Sivagurunathan, P., Dharmalingam, K. and Ramachandran, K., “Molecular Interaction Studies of Acrylic Esters with Alcohols,” Indian J. Pure Appl. Phys., Vol. 43, pp. 905910 (2005).
  10. [10] Sivagurunathan, P., Dharmalingam, K. and Ramachandran, K., “Hydrogen Bonding Interaction between Methyl Methacrylate and Alcohols,” Z. Phys. Chem., Vol. 219, pp. 16351638 (2005).
  11. [11] Dharmalingam, K., Ramachandran, K. and Sivagurunathan, P., “FTIR Study of Molecular Interaction in Butyl Methacrylate-Organic Solvents Mixtures,” Z. Phys. Chem., Vol. 220, pp. 739748 (2006).
  12. [12] Sivagurunathan, P., Dharmalingam, K. and Ramachandran, K., “Molecular Interaction Studies of Acrylic Esters with 1-Alcohols,” Spectrochim. Acta, Vol. 64A, pp. 127129 (2006).
  13. [13] Dharmalingam, K., Ramachandran, K. and Sivagurunathan, P., “Hydrogen Bonding Interaction between Ethyl Methacrylate and Alcohols in Non-Polar Solvents: An FTIR Study,” Main Group Chemistry, Vol. 4, pp. 241246 (2005).
  14. [14] Dharmalingam, K. and Ramachandran, K., “Solvent Effects on Hydrogen Bonding between 1-Pentanol and Butyl Methacrylate”, Phys. Chem. Liq., Vol. 44, pp. 7781 (2006).
  15. [15] Sivagurunathan, P., Dharmalingam, K. and Ramachandran, K., “Molecular Interaction Studies of NPropanol with Methyl Methacrylate in Inert Solvents,” Indian J. Phys., Vol. 79, pp. 14031405 (2005).
  16. [16] Dharmalingam, K., Ramachandran, K. and Sivagurunathan, P., “Hydrogen Bonding Interaction between Acrylic Esters and Monohydric Alcohols in Non-Polar Solvents: An FTIR Study,” Spectrochim. Acta, Vol. 66A, PP. 4851 (2007).
  17. [17] Sivagurunathan, P., Dharmalingam, K. and Ramachandran, K., “Solvent Effects on Hydrogen Bonding between Ethyl Methacrylate and 1-Butanol,” Z. Phys. Chem., Vol. 219, pp. 13851390 (2005).
  18. [18] Sivagurunathan, P., Dharmalingam, K. Ramachandran, K. and Kalamse, G. M., “Hydrogen Bonding between Alcohols and N,N-Dimethylformamide: An FTIR Study,” Main Group Chemistry, Vol. 5, pp. 8994 (2006).
  19. [19] Vogal, A. I., Text Book of Practical Organic Chemistry, 3rd edition, Longman, London (1957).
  20. [20] Samulon, H. A., “Spectrum Analysis of Transient Response Curves,” Proc.IRE, Vol. 39, pp. 175186 (1951).
  21. [21] Shannon, C. E., “Communication in the Presence of Noise,” Proc.IRE, Vol. 37, pp. 1021 (1949).
  22. [22] Cole, R. H., Berbarian, J. G., Mashimo, S., Chryssikos, G., Burns, A. and Tombari, E., “Time Domain Reflection Methods for Dielectric Measurements to 10 GHz,” J. Appl. Phys., Vol. 66, pp. 793802 (1989).
  23. [23] Debye, P., Polar Molecules, Chemical Catalog, New York (1929).
  24. [24] Bevington, P. R., Data Reduction and Error Analysis for the Physical Sciences, Mc Graw-Hill, New York (1969).
  25. [25] Sivagurunathan, P., Dharmalingam, K., Ramachandran, K., Prabhakar Undre, B., Khirade, P. W. and Mehrotra, S. C., “Dielectric Relaxation Study of Alkyl Methacrylates + 1-Alcohols Mixtures using Time Domain Reflectometry,” Phil. Mag. Lett., Vol. 86, pp. 291300 (2006).
  26. [26] Bruggeman, D. A. G., “The Calculation of Various Physical Constants of Heterogeneous Substances. I. The Dielectric Constants and Conductivities of Mixtures Composed of Isotropic Substances,” Ann. Phys. (Leipz.), Vol. 24, pp. 636664 (1935).
  27. [27] Sivagurunathan, P., Dharmalingam, K., Ramachandran, K., Prabhakar Undre, B., Khirade, P. W. and Mehrotra, S. C., “Dielectric Study of Butyl Methacrylate-Alcohol Mixtures by Time Domain Reflectometry, Physica B, Vol. 387, pp.203207 (2007).
  28. [28] Kirkwood, J. G., “The Dielectric Polarization of Polar Liquids,” J. Chem. Phys., Vol. 7, pp. 911919 (1939).
  29. [29] Kumbharkhane, A. C., Puranik, S. M. and Mehrotra, S. C., “Structural Study of Amide-Water Mixtures using Dielectric Relaxation Technique,” J. Mol. Liq., Vol. 51, pp. 261277 (1992).