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Adsorption Hysteresis in Open Slit-like Micropores
Grygorii Dragan1, Volodymyr Kutarov1, Eva Schieferstein2
1Physics Research Institute, Odesa I.I. Mechnikov National University, 27 Pasteur St., 65082 Odesa, Ukraine.
Molecules (Basel, Switzerland)
|August 27, 2021
Summary
This study analyzes low-pressure hysteresis (LPH) in adsorption using thermodynamic and fractal models. Findings reveal distinct fractal dimensions for adsorption and desorption, impacting heat storage technology optimization.
Area of Science:
- Physical Chemistry
- Materials Science
- Thermodynamics
Background:
- Low-pressure hysteresis (LPH) is under-researched, hindering optimization of applications like heat storage.
- Understanding LPH is crucial for advancing materials science and energy technologies.
Purpose of the Study:
- To develop and apply thermodynamically based models for analyzing low-pressure hysteresis.
- To investigate the adsorption and desorption processes using fractal geometry and irreversible thermodynamics.
Main Methods:
- Development of two thermodynamically based approaches for LPH analysis.
- Application of fractal geometry to characterize adsorption and desorption branches.
- Utilizing the degree of irreversibility as a control parameter in generalized equations.
Main Results:
- Accurate description of both adsorption and desorption branches using the developed methods.
- Demonstration that the fractal dimension of adsorption exceeds that of desorption.
- Indication of a more symmetric adsorbate phase state during adsorption compared to desorption.
Conclusions:
- The developed thermodynamic and fractal models provide a robust framework for studying LPH.
- The observed difference in fractal dimensions highlights distinct characteristics of adsorption and desorption phases.
- Insights gained can inform the design and optimization of materials for applications sensitive to adsorption phenomena.

