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Related Concept Videos

Thermodynamics: Activity Coefficient01:24

Thermodynamics: Activity Coefficient

1.6K
Activity is the measure of the effective concentration of the species in solution. It can be expressed as the product of the molar concentration of the species and its activity coefficient. The activity coefficient is a dimensionless quantity and depends on the total ionic strength of the solution.
The activity coefficient is a measure of the deviation from ideal behavior. When the ionic strength of the solution is minimal, the activity coefficient of an ionic species is close to unity, making...
1.6K
Factors Affecting Activity Coefficient01:17

Factors Affecting Activity Coefficient

846
The extended Debye-Hückel equation indicates that the activity coefficient of an ion in an aqueous solution at 25°C depends on three partially interdependent properties: the ionic strength of the solution, the charge of the ion, and the ion size. 
The activity coefficient value for an ion is close to one when the solution has almost zero ionic strength, i.e., when the solution shows close to ideal behavior. As the ionic strength of the solution increases from 0 to 0.1 mol/L, a...
846
Vapor Pressure Lowering03:28

Vapor Pressure Lowering

27.2K
The equilibrium vapor pressure of a liquid is the pressure exerted by its gaseous phase when vaporization and condensation are occurring at equal rates:
 
Dissolving a nonvolatile substance in volatile liquid results in a lowering of the liquid’s vapor pressure. This phenomenon can be explained by considering the effect of added solute molecules on the liquid's vaporization and condensation processes. To vaporize, solvent molecules must be present at the surface of the solution....
27.2K
Theories of Dissolution: The Danckwerts' Model and Interfacial Barrier Model01:09

Theories of Dissolution: The Danckwerts' Model and Interfacial Barrier Model

363
Various dissolution theories provide insight into the factors that influence the dissolution rate. Danckwerts' Model suggests that turbulence, rather than a stagnant layer, characterizes the dissolution medium at the solid-liquid interface. In this model, the agitated solvent contains macroscopic packets that move to the interface via eddy currents, facilitating the absorption and delivery of the drug to the bulk solution. The regular replenishment of solvent packets maintains the...
363
Freezing Point Depression and Boiling Point Elevation03:12

Freezing Point Depression and Boiling Point Elevation

35.3K
Boiling Point Elevation
The boiling point of a liquid is the temperature at which its vapor pressure is equal to ambient atmospheric pressure. Since the vapor pressure of a solution is lowered due to the presence of nonvolatile solutes, it stands to reason that the solution’s boiling point will subsequently be increased. Vapor pressure increases with temperature, and so a solution will require a higher temperature than will pure solvent to achieve any given vapor pressure, including one...
35.3K
Thermodynamics: Chemical Potential and Activity01:10

Thermodynamics: Chemical Potential and Activity

1.0K
The effective concentration of a species in a solution can be expressed precisely in terms of its activity. Activity considers the effect of electrolytes present in the vicinity of the species of interest and depends on the ionic strength of the solution. The activity of a species is expressed as the product of molar concentration and the activity coefficient of the species.
The thermodynamic equilibrium constant is more accurately defined in terms of activity rather than concentration.
1.0K

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New Model to Predict Infinite Dilution Activity Coefficients Based on (∂p/∂x) .

Jiahuan Zheng1, Yangdong Hu1, Lianying Wu1

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A new group contribution model accurately predicts infinite dilution activity coefficients (γ∞) in aqueous solutions. This thermodynamic model offers improved accuracy over existing methods for phase equilibria and solubility calculations.

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Area of Science:

  • Thermodynamics
  • Physical Chemistry
  • Chemical Engineering

Background:

  • Accurate prediction of infinite dilution activity coefficients (γ∞) is crucial for molecular thermodynamics.
  • Existing models face challenges in predicting γ∞ for aqueous systems.

Purpose of the Study:

  • To develop a novel, accurate model for predicting infinite dilution activity coefficients (γ∞) in aqueous solutions.
  • To establish a model applicable across various temperatures.

Main Methods:

  • Utilized a group contribution method to estimate (∂p/∂x)T.
  • Established a relationship between (∂p/∂x)T and γ∞ at low pressure.
  • Validated the model using extensive experimental data (46 systems, >450 data points).

Main Results:

  • Achieved a total average relative deviation of 4.73% for training data.
  • Demonstrated satisfactory predictive performance on unseen data.
  • Outperformed UNIFAC, modified UNIFAC, and other predictive models for aqueous systems.

Conclusions:

  • The developed model provides accurate predictions of γ∞ in aqueous solutions.
  • The model's simplicity facilitates its application in engineering practices.
  • This approach offers a superior alternative to existing models for thermodynamic property calculations.