VIBRATIONAL FREQUENCIES OF FUNCTIONAL ERYTHROCYTES USING SYMMETRY-ADAPTED LIE ALGEBRAIC APPROACH

Authors

  • Vijayasekhar Jaliparthi GITAM Deemed to be University, Hyderabad, India
  • Sreenivas Department of Mathematics, Anil Neerukonda Institute of Technology & Sciences (ANITS), Visakhapatnam, India

DOI:

https://doi.org/10.55766/sujst-2024-02-e02367

Keywords:

Metalloporphyrins, functional erythrocytes, Lie algebraic model, Hamiltonian operator

Abstract

This study contributes to our understanding of vibrational frequencies in functional erythrocytes by applying the U(2) Lie algebraic model. The central objective of this research revolves around a comprehensive exploration of Raman spectra, particularly concerning the higher overtone vibrational frequencies. These investigations are conducted within the unique physiological contexts of oxygenated and deoxygenated erythrocytes. The Hamiltonian operator, which is related to the Lie algebraic model, is at the core of this framework. This operator plays a vital role in understanding the complex vibrational modes within these specialized cells, particularly those related to C-H and C-C stretching. This study improves our understanding of the vibrational dynamics within erythrocytes by applying the U(2) Lie algebraic model and sheds light on how their vibrational modes may vary under different oxygenation states.

Author Biography

Sreenivas, Department of Mathematics, Anil Neerukonda Institute of Technology & Sciences (ANITS), Visakhapatnam, India

Assistant Professor, Department of Mathematics, Anil Neerukonda Institute of Technology & Sciences (ANITS), Visakhapatnam, India

References

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Published

2024-05-27

How to Cite

Jaliparthi, V., & T, S. (2024). VIBRATIONAL FREQUENCIES OF FUNCTIONAL ERYTHROCYTES USING SYMMETRY-ADAPTED LIE ALGEBRAIC APPROACH . Suranaree Journal of Science and Technology, 31(2), 030182(1–5). https://doi.org/10.55766/sujst-2024-02-e02367

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