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Resonance Raman spectroscopy of red blood cells using lie algebraic technique
Department of Mathematics, Jawaharlal Nehru Technological University Kakinada, Kakinada, India
Department of Electronics & Instrumentation Engineering, Lakireddy Bali Reddy College of Engineering, Vijayawada, India
Department of Applied Mathematics, College of Science & Technology, Andhra University, Visakhapatnam, India
- 1 Department of Mathematics, Jawaharlal Nehru Technological University Kakinada, Kakinada, India
- 2 Department of Electronics & Instrumentation Engineering, Lakireddy Bali Reddy College of Engineering, Vijayawada, India
- 3 Department of Applied Mathematics, College of Science & Technology, Andhra University, Visakhapatnam, India
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Abstract
Raman spectra of oxygenated and deoxygenated functional erythrocytes are calculated by using Lie algebraic technique. The results are obtained by this method is accuracy with the experimental data. So, the algebraic techniques are appropriate to the Raman spectra of red blood cells.
KeywordsRaman SpectroscopyRed Blood CellLie Algebraic TechniqueVibrational Assignments
- Wood, B.R., Hammer, L., Davis, L. and McNaughton, D. (2005) Raman microspectroscopy and imaging provides insights into heme aggregation and denaturation within human erythrocytes. Journal of Biomedical Optics, 10, 14005. doi:10.1117/1.1854678
- Spiro T.G. Ed. (1988) The biological application of Raman spectroscopy. Wiley, New York.
- Puppels, G.J., Olminkhof, J.H.F., Segers-Nolten, G.M.J., Otto, C., de Mul, F.F.M. and Greve, J. (1991) Laser radiation and Raman spectroscopy of single living cells and Chromosomes: Sample degration occurs with 514.15 nm but not with 600 nm laser light. Experimental Cell Research, 195, 361-367. doi:10.1016/0014-4827(91)90385-8
- Van Manen, H.-J., Kraan, Y.M., Roos, D. and Otto, C. (2004) Single-cell Raman and fluorescence microscopy reveal the association of lipid bodies with phagosomes in leukocytes. The Journal of Physical Chemistry B, 108, 18762-18771. doi:10.1021/jp046955b
- Iachello, F. (1981) Algebraic methods for molecular rotational-vibrational spectra. Chemical Physics Letters, 78, 581. doi:10.1016/0009-2614(81)85262-1
- Iachello, F. and Levine, R.D. (1982) Algebraic approach to molecular rotation and vibration spectra-I Diatomic molecules. Journal of Chemical Physics, 77, 3046. doi:10.1063/1.444228
- van Roosmalen, O., Dieperink, A.E.L. and Iachello, F. (1982) A dynamic algebra for molecular rotation-vibraion spectra of complex molecules. Chemical Physics Letters, 85, 32-36. doi:10.1016/0009-2614(82)83455-6
- van Roosmalen, O., Iachello, F., Levine, R.D. and Die- perink, A.E.L. (1983) Algebraic approach to molecular spectra of rotation-vibration-II: Triatomic molecules, Journal of Chemical Physics, 79, 2515.
- Iachello, F. and Levine, R.D. (1996) Algebraic theory of molecules. Advances in Chemical Physics, 93, 455.
- Iachello, F. and Oss, S. (2002) Algebraic methods in quantum mechanics: From molecules to polymers, European Physical Journal D, 19, 307. doi:10.1140/epjd/e20020089
- Sarkar, N.K., Choudhury, J., Karumuri, S.R. and Bhattacharjee, R. (2008) An algebraic approach to the comparative study of the vibrational spectra of monofluo- roacetylene (HCCF) and deuterated acetylene (HCCD). Molecular Physics, 106, 693-702. doi:10.1080/00268970801939019
- Sarkar, N.K., Choudhury, J., Karumuri, S.R. and Bhattacharjee, R. (2009) A Comparative study of the vibrational spectra of OCS and HCP using lie algebraic method, European Physical Journal D, 53, 163. doi:10.1140/epjd/e2009-00094-8