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This deck focuses on Solubility, giving you a quick way to review the definitions, rules, and examples that matter most for AP Chemistry.
Study Solubility in AP Chemistry with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
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Identify the solubility rule for phosphates.
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Phosphates are generally insoluble except for those of alkali metals and NH4+. Only alkali metals and ammonium form soluble phosphates.
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This deck focuses on Solubility, giving you a quick way to review the definitions, rules, and examples that matter most for AP Chemistry.
Work through these flashcards in short sessions. Try to answer each prompt before flipping the card, then revisit any cards you miss until the explanation feels automatic.
Answer: Phosphates are generally insoluble except for those of alkali metals and NH4+. Only alkali metals and ammonium form soluble phosphates.
Answer: Chlorides are generally soluble except for AgCl, PbCl2, and Hg2Cl2. These three chlorides are notable exceptions to solubility.
Answer: A saturated solution contains the maximum concentration of solute that can dissolve at a given temperature. This represents equilibrium between dissolved and undissolved solute.
Answer: Henry's Law states that the solubility of a gas is directly proportional to its partial pressure. This describes the pressure-solubility relationship for gases.
Answer: Sulfides are generally insoluble except for those of alkali metals and NH4+. Only alkali metals and ammonium form soluble sulfides.
Answer: Ksp is the product of the concentrations of the ions each raised to the power of its coefficient. This equilibrium expression applies to saturated solutions.
Answer: Solubility can increase with increasing ionic strength due to the salt effect. More ions in solution can affect solubility equilibria.
Answer: Solubility is the maximum amount of solute that can dissolve in a solvent at a given temperature. This defines the equilibrium limit of dissolution.
Answer: Adding a soluble salt can increase ionic strength, potentially increasing solubility. The salt effect can enhance solubility through ionic interactions.
Answer: A dilute solution contains a small amount of solute relative to the solvent. This describes low solute concentration relative to capacity.
Answer: Solubility is often expressed in moles per liter (mol/L) or grams per liter (g/L). These are the standard units for expressing solubility.
Answer: Chlorides are generally soluble except for AgCl, PbCl2, and Hg2Cl2. These three chlorides are notable exceptions to solubility.
Answer: M=Vn where M is molarity, n is moles of solute, V is volume in liters. This is the fundamental concentration formula.
Answer: Carbonates are generally insoluble except for those of alkali metals and NH4+. Only alkali metals and ammonium form soluble carbonates.
Answer: A saturated solution contains the maximum concentration of solute that can dissolve at a given temperature. This represents equilibrium between dissolved and undissolved solute.
Answer: A supersaturated solution contains more solute than what is soluble at a given temperature. This metastable state exceeds normal solubility limits.
Answer: Nitrates are generally soluble without exceptions. All nitrate compounds dissolve readily in water.
Answer: Molarity M=0.25 mol/L. Using M=Vn=20.5.
Answer: Solubility S=34Ksp. For AB2: Ksp=[A2+][B−]2=4S3.
Answer: Sulfides are generally insoluble except for those of alkali metals and NH4+. Only alkali metals and ammonium form soluble sulfides.
Answer: Adding a soluble salt can increase ionic strength, potentially increasing solubility. The salt effect can enhance solubility through ionic interactions.
Answer: A solution is a homogeneous mixture of two or more substances. Solutions have uniform composition throughout.
Answer: NaCl is soluble in water. Sodium chloride follows the alkali metal solubility rule.
Answer: Sulfates are generally soluble except for BaSO4, PbSO4, and CaSO4. These three sulfates have low solubility values.
Answer: The common ion effect is the decrease in solubility of a salt when a common ion is added. Le Chatelier's principle explains this solubility decrease.
Answer: A temperature curve shows how solubility changes with temperature. These curves plot solubility versus temperature data.
Answer: An unsaturated solution can dissolve more solute at a given temperature. The solution can accommodate additional solute.
Answer: A solvent dissolves the solute, forming a solution. The solvent provides the medium for dissolution.
Answer: AgCl is insoluble in water. Silver chloride follows the chloride exception rule.
Answer: Nitrates are generally soluble without exceptions. All nitrate compounds dissolve readily in water.
Answer: Gas solubility decreases with increasing temperature. Higher kinetic energy reduces gas-liquid interactions.
Answer: Gas solubility in liquids increases with increasing pressure. Higher pressure forces more gas molecules into solution.
Answer: Solubility is the maximum concentration of solute that can dissolve. Solubility sets the upper limit for solution concentration.
Answer: Smaller particles dissolve faster, increasing the rate but not the solubility. Surface area affects dissolution rate, not total solubility.
Answer: Nitrates are generally soluble without exceptions. All nitrate compounds dissolve readily in water.
Answer: Hydroxides are generally insoluble except for alkali metals and Ba(OH)2. These are the only hydroxides with significant solubility.
Answer: Ksp=[Ca2+][F−]2. The stoichiometry shows 1:2 ion ratio in the expression.
Answer: A solution is a homogeneous mixture of two or more substances. Solutions have uniform composition throughout.
Answer: The presence of a common ion decreases the solubility of a compound. The equilibrium shifts left by Le Chatelier's principle.
Answer: A solute is a substance dissolved in another substance, forming a solution. The solute is the dissolved component of a solution.
Answer: Solubility of most solids increases with increasing temperature. Higher temperature provides energy to break intermolecular forces.
Answer: Adding a soluble salt can increase ionic strength, potentially increasing solubility. The salt effect can enhance solubility through ionic interactions.
Answer: Gas solubility decreases with increasing temperature. Higher kinetic energy reduces gas-liquid interactions.
Answer: A saturated solution contains the maximum concentration of solute that can dissolve at a given temperature. This represents equilibrium between dissolved and undissolved solute.
Answer: Stirring increases the rate of solute dissolving, but not the solubility. Stirring affects dissolution rate, not equilibrium solubility.
Answer: NaCl is soluble in water. Sodium chloride follows the alkali metal solubility rule.
Answer: A precipitation reaction is when two solutions combine to form an insoluble solid. This occurs when the reaction quotient exceeds Ksp.
Answer: Nitrates (NO3−), acetates (CH3COO−) and most alkali metals are generally soluble. These ions form highly soluble compounds with most anions.
Answer: Freezing point depression is a colligative property related to solubility. Colligative properties depend on particle number, not identity.
Answer: Both temperature and pressure affect solubility. Both factors influence how much solute dissolves.