DIFFUSIVE DYNAMICS OF WATER MOLECULES IN LIQUID MEDIA

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Sadikova Nargiza Bakhtiyarovna
Tursunova Zukhra Botirovna
Sunatova Dilfuza Abatovna

Abstract

The continuous motion of water molecules is a fundamental characteristic that underlies many physical, chemical, and biological phenomena. This article examines the diffusion of water molecules as a key mechanism of mass transport in liquids. Emphasis is placed on the molecular origins of diffusion, the role of random thermal motion, and the theoretical models used to describe diffusion processes. Classical diffusion theories, including Fick’s laws and random walk models, are discussed in order to connect microscopic molecular behavior with macroscopic transport phenomena. In addition, the article analyzes the main factors affecting the diffusion of water molecules, such as temperature, viscosity, and environmental constraints. Practical applications of the diffusion model in biology, chemistry, environmental science, and medical technology are also highlighted. The study demonstrates that diffusion is a universal and essential process that arises naturally from molecular motion and plays a central role in both natural systems and technological applications.

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How to Cite

DIFFUSIVE DYNAMICS OF WATER MOLECULES IN LIQUID MEDIA. (2025). International Bulletin of Medical Sciences and Clinical Research, 5(12), 134-137. https://doi.org/10.37547/

References

1.Einstein, A. (1905). On the motion of small particles suspended in liquids at rest required by the molecular-kinetic theory of heat. Annalen der Physik, 17, 549–560.

2.Fick, A. (1855). On liquid diffusion. Philosophical Magazine, 10(63), 30–39.

3.Atkins, P., & de Paula, J. (2018). Physical Chemistry (11th ed.). Oxford University Press

4.Crank, J. (1975). The Mathematics of Diffusion. Oxford University Press.

5.Berg, H. C. (1993). Random Walks in Biology. Princeton University Press.

6.Callen, H. B. (1985). Thermodynamics and an Introduction to Thermostatistics. Wiley.

7.Chandler, D. (1987). Introduction to Modern Statistical Mechanics. Oxford University Press.

8.Israelachvili, J. N. (2011). Intermolecular and Surface Forces (3rd ed.). Academic Press.

9.Debenedetti, P. G. (2003). Supercooled and glassy water. Journal of Physics: Condensed Matter, 15(45), R1669–R1726.

10.Stillinger, F. H. (1980). Water revisited. Science, 209(4455), 451–457.

11.Bear, J. (1972). Dynamics of Fluids in Porous Media. Elsevier.

12.Cussler, E. L. (2009). Diffusion: Mass Transfer in Fluid Systems (3rd ed.). Cambridge University Press.

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