AP Chemistry Flashcards: Properties Of Solids

Study Properties Of Solids in AP Chemistry with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.

AP Chemistry

Properties Of Solids

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QUESTION
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What are the primary types of crystalline solids?

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ANSWER

Ionic, molecular, covalent network, and metallic. Based on the bonding and structure of constituent particles.

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This deck focuses on Properties Of Solids, giving you a quick way to review the definitions, rules, and examples that matter most for AP Chemistry.

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Flashcard 1: What are the primary types of crystalline solids?

Answer: Ionic, molecular, covalent network, and metallic. Based on the bonding and structure of constituent particles.

Flashcard 2: Identify the type of solid that diamond is an example of.

Answer: Covalent network solid. Carbon atoms form strong covalent bonds in all three dimensions.

Flashcard 3: State the typical electrical conductivity of molecular solids.

Answer: Generally poor conductors. No mobile charge carriers in the solid state prevents current flow.

Flashcard 4: What is the coordination number for a face-centered cubic lattice?

Answer:

  1. Each atom contacts twelve others in this close-packed structure.

Flashcard 5: What type of solid is common table salt an example of?

Answer: Ionic solid. Sodium and chloride ions held together by strong electrostatic forces.

Flashcard 6: Identify the structural characteristic of metallic solids.

Answer: Metal cations surrounded by a sea of delocalized electrons. Electron sea model explains metallic properties like conductivity and malleability.

Flashcard 7: Identify the crystal system where all edges are equal and angles are 90°.

Answer: Cubic system. Three equal axes at right angles define this symmetric crystal system.

Flashcard 8: What is the distinguishing feature of amorphous solids regarding melting?

Answer: No sharp melting point. Random structure softens gradually over a temperature range.

Flashcard 9: Which type of solid has variable hardness and melting points?

Answer: Metallic solids. Properties depend on specific metal and bonding strength variations.

Flashcard 10: What type of solid is common table salt an example of?

Answer: Ionic solid. Sodium and chloride ions held together by strong electrostatic forces.

Flashcard 11: Identify the type of solid that diamond is an example of.

Answer: Covalent network solid. Carbon atoms form strong covalent bonds in all three dimensions.

Flashcard 12: Identify the type of solid with directional covalent bonds.

Answer: Covalent network solids. Bond angles and lengths are fixed, creating rigid structures.

Flashcard 13: What is the feature that distinguishes a crystalline solid at the atomic level?

Answer: Ordered atomic arrangement. Repeating three-dimensional pattern defines crystal structure.

Flashcard 14: What is a common property of covalent network solids regarding melting points?

Answer: Extremely high melting points. Strong covalent bonds throughout require enormous energy to break.

Flashcard 15: Identify the type of solid with directional covalent bonds.

Answer: Covalent network solids. Bond angles and lengths are fixed, creating rigid structures.

Flashcard 16: What is the general solubility of ionic solids in water?

Answer: Generally soluble, depending on specific ions. Polar water molecules interact favorably with separated ions.

Flashcard 17: What kind of solid is dry ice an example of?

Answer: Molecular solid. Solid CO2CO_2 held together by weak van der Waals forces.

Flashcard 18: Identify the crystal system where all edges are equal and angles are 90°.

Answer: Cubic system. Three equal axes at right angles define this symmetric crystal system.

Flashcard 19: State one property of solids that distinguishes them from liquids.

Answer: Definite shape. Strong intermolecular forces maintain rigid three-dimensional structure.

Flashcard 20: What is the packing efficiency of a face-centered cubic lattice?

Answer: 74%. Close-packed spheres achieve maximum space utilization in this arrangement.

Flashcard 21: Identify the characteristic property of ionic solids.

Answer: High melting points and electrical conductivity in molten state. Strong ionic bonds require high energy to break and ions become mobile when melted.

Flashcard 22: Which type of solid is ice classified as?

Answer: Molecular solid. Water molecules held by hydrogen bonds in hexagonal crystal structure.

Flashcard 23: Identify the crystal system where all edges are equal and angles are 90°.

Answer: Cubic system. Three equal axes at right angles define this symmetric crystal system.

Flashcard 24: What is the primary force holding ionic solids together?

Answer: Electrostatic attractions. Coulombic forces between oppositely charged ions create strong attractions.

Flashcard 25: Identify the characteristic property of ionic solids.

Answer: High melting points and electrical conductivity in molten state. Strong ionic bonds require high energy to break and ions become mobile when melted.

Flashcard 26: Which type of solid is characterized by discrete molecules held by intermolecular forces?

Answer: Molecular solids. Van der Waals forces, hydrogen bonds, or dipole interactions hold molecules together.

Flashcard 27: Identify the crystal system where all edges are equal and angles are 90°.

Answer: Cubic system. Three equal axes at right angles define this symmetric crystal system.

Flashcard 28: Identify the structure that graphite is an example of.

Answer: Covalent network solid. Layered structure with delocalized electrons between carbon sheets.

Flashcard 29: What is the distinguishing feature of amorphous solids regarding melting?

Answer: No sharp melting point. Random structure softens gradually over a temperature range.

Flashcard 30: Which type of solid can be reshaped by applying force?

Answer: Metallic solids. Delocalized electrons allow layers to slide past each other without breaking bonds.

Flashcard 31: State the type of bonding present in covalent network solids.

Answer: Covalent bonding throughout the structure. Extended network of covalent bonds creates very strong structures.

Flashcard 32: State the simplest repeating unit in a crystal lattice.

Answer: Unit cell. Smallest portion that shows the complete crystal pattern when repeated.

Flashcard 33: Which property differentiates crystalline from amorphous solids?

Answer: Regular repeating pattern in crystalline solids. Long-range order creates distinct X-ray diffraction patterns in crystals.

Flashcard 34: State the unit cell type for a hexagonal close-packed structure.

Answer: Hexagonal. Six-fold symmetry with layers stacked in ABAB pattern.

Flashcard 35: Which property is common in amorphous solids?

Answer: Lack of long-range order. Random atomic arrangement distinguishes them from ordered crystalline structures.

Flashcard 36: What is a distinguishing feature of metallic solids?

Answer: Good electrical and thermal conductivity. Mobile electron sea allows efficient heat and electric current transfer.

Flashcard 37: State the unit cell type for a hexagonal close-packed structure.

Answer: Hexagonal. Six-fold symmetry with layers stacked in ABAB pattern.

Flashcard 38: Identify the type of solid with the highest thermal conductivity.

Answer: Metallic solids. Mobile electrons efficiently transfer thermal energy through the structure.

Flashcard 39: What is the feature that distinguishes a crystalline solid at the atomic level?

Answer: Ordered atomic arrangement. Repeating three-dimensional pattern defines crystal structure.

Flashcard 40: State the type of bonding present in covalent network solids.

Answer: Covalent bonding throughout the structure. Extended network of covalent bonds creates very strong structures.

Flashcard 41: State the coordination number for a body-centered cubic lattice.

Answer:

  1. Each atom touches eight nearest neighbors in this packing arrangement.

Flashcard 42: What is the feature that distinguishes a crystalline solid at the atomic level?

Answer: Ordered atomic arrangement. Repeating three-dimensional pattern defines crystal structure.

Flashcard 43: What is the typical hardness of covalent network solids?

Answer: Very hard. Extensive covalent bonding throughout makes them extremely resistant to deformation.

Flashcard 44: What type of solid is common table salt an example of?

Answer: Ionic solid. Sodium and chloride ions held together by strong electrostatic forces.

Flashcard 45: What is a distinguishing feature of metallic solids?

Answer: Good electrical and thermal conductivity. Mobile electron sea allows efficient heat and electric current transfer.

Flashcard 46: What type of crystal lattice does sodium chloride form?

Answer: Cubic lattice. Each ion has six nearest neighbors in this common ionic structure.

Flashcard 47: What is a distinguishing feature of metallic solids?

Answer: Good electrical and thermal conductivity. Mobile electron sea allows efficient heat and electric current transfer.

Flashcard 48: State the unit cell type for a hexagonal close-packed structure.

Answer: Hexagonal. Six-fold symmetry with layers stacked in ABAB pattern.

Flashcard 49: What type of solid is common table salt an example of?

Answer: Ionic solid. Sodium and chloride ions held together by strong electrostatic forces.

Flashcard 50: State the packing efficiency of a simple cubic lattice.

Answer: 52%. Inefficient packing with spheres touching only along cube edges.

Flashcard 51: State the type of bonding present in covalent network solids.

Answer: Covalent bonding throughout the structure. Extended network of covalent bonds creates very strong structures.

Flashcard 52: Identify the type of solid that exhibits the highest melting points.

Answer: Covalent network solids. Extensive covalent bonding requires the most energy to break.

Flashcard 53: What is the distinguishing feature of amorphous solids regarding melting?

Answer: No sharp melting point. Random structure softens gradually over a temperature range.

Flashcard 54: What is the primary structural feature of graphite?

Answer: Layers of carbon atoms in a hexagonal arrangement. Planar layers allow electrons to move freely within sheets.

Flashcard 55: Identify the characteristic property of ionic solids.

Answer: High melting points and electrical conductivity in molten state. Strong ionic bonds require high energy to break and ions become mobile when melted.

Flashcard 56: Identify the structural characteristic of metallic solids.

Answer: Metal cations surrounded by a sea of delocalized electrons. Electron sea model explains metallic properties like conductivity and malleability.

Flashcard 57: What is the typical electrical conductivity of ionic solids?

Answer: Conductive when molten or dissolved. Ions become mobile charge carriers when lattice breaks down.

Flashcard 58: Identify the characteristic property of ionic solids.

Answer: High melting points and electrical conductivity in molten state. Strong ionic bonds require high energy to break and ions become mobile when melted.

Flashcard 59: What is a distinguishing feature of metallic solids?

Answer: Good electrical and thermal conductivity. Mobile electron sea allows efficient heat and electric current transfer.

Flashcard 60: State the unit cell type for a hexagonal close-packed structure.

Answer: Hexagonal. Six-fold symmetry with layers stacked in ABAB pattern.

Flashcard 61: What type of solid is glass considered to be?

Answer: Amorphous solid. Lacks ordered crystalline structure with random atomic arrangement.

Flashcard 62: What is the distinguishing feature of amorphous solids regarding melting?

Answer: No sharp melting point. Random structure softens gradually over a temperature range.

Flashcard 63: Which type of solid is characterized by discrete molecules held by intermolecular forces?

Answer: Molecular solids. Van der Waals forces, hydrogen bonds, or dipole interactions hold molecules together.

Flashcard 64: Identify the type of solid that is typically soft and has low melting points.

Answer: Molecular solids. Weak intermolecular forces make them easily deformable and meltable.

Flashcard 65: What defines the anisotropic nature of crystalline solids?

Answer: Different properties in different directions. Ordered atomic arrangement creates directional variation in physical properties.

Flashcard 66: State the type of bonding present in covalent network solids.

Answer: Covalent bonding throughout the structure. Extended network of covalent bonds creates very strong structures.

Flashcard 67: What is the feature that distinguishes a crystalline solid at the atomic level?

Answer: Ordered atomic arrangement. Repeating three-dimensional pattern defines crystal structure.

Flashcard 68: What is the coordination number in a simple cubic lattice?

Answer:

  1. Each sphere touches six others along the cube faces and edges.