Sparingly Soluble Salts

Sparingly soluble salts are ionic compounds that dissolve only to a limited extent in water, establishing an important balance between solid materials and dissolved ions. At equilibrium, a small amount of salt dissociates, and the resulting ion concentrations are described by the solubility product constant (Ksp); common ions, pH, and complex formation can shift this dissolution equilibrium. Understanding sparingly soluble salts helps predict precipitation reactions, calculate ion concentrations, and separate substances in qualitative and analytical chemistry. These principles also support studies of mineral formation, water treatment, environmental contamination, and the behavior of poorly soluble compounds in natural and laboratory systems.

Sparingly Soluble Salts - Related Videos

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JoVE Core - Chemistry

Factors Affecting Solubility

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2020

Compared with pure water, the solubility of an ionic compound is less in aqueous solutions containing a common ion (one also produced by dissolution of the ionic compound). This is an example of a phenomenon known as the common ion effect, which is a consequence of the law of mass action that may be explained using Le Chȃtelier’s principle. Consider the dissolution of silver iodide: This solubility equilibrium may be shifted left by the addition of either silver or iodide ions, resulting in...

Solubility - Student Protocol

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2020

Source: Smaa Koraym at Johns Hopkins University, MD, USA Creating a Saturated SolutionExpand In this experiment, you will create a saturated solution of sodium tetraborate decahydrate, also called borax. In water, borax dissociates into two sodium cations and one tetraborate anion. When an aqueous borax solution is saturated, it means that it contains the maximum amount of dissolved solute, which is borax, for that volume of solvent, which is water. Any additional solid won't appear to...

Solubility - Concepts

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2020

Solubility Solubility describes how much of a solute can dissolve in a given volume of a specific solvent. Solubility is usually reported in terms of solute mass per solvent volume or solute mass per solvent mass. For example, the solubility of sodium chloride in water at room temperature is reported as 36 g per 100 mL of water. If solubility is reported in solute mass per solvent mass, the solvent mass will need to be converted to volume for further calculations. Solubility changes with...

Solubility of Ionic Compounds

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2020

Solubility is the measure of the maximum amount of solute that can be dissolved in a given quantity of solvent at a given temperature and pressure. Solubility is usually measured in molarity (M) or moles per liter (mol/L). A compound is termed soluble if it dissolves in water. When soluble salts dissolve in water, the ions in the solid separate and disperse uniformly throughout the solution; this process represents a physical change known as dissociation. Potassium chloride (KCl) is an example...

Solubility Equilibria

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2020

Solubility equilibria are established when the dissolution and precipitation of a solute species occur at equal rates. These equilibria underlie many natural and technological processes, ranging from tooth decay to water purification. An understanding of the factors affecting compound solubility is, therefore, essential to the effective management of these processes. This section applies previously introduced equilibrium concepts and tools to systems involving dissolution and precipitation. The...

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