1.5 Solid Structures Flashcards
Describe the crystal structure of sodium chloride
Describe the crystal structure of caesium chloride
Name two giant covalent structures formed from carbon atoms
- Graphite
- Diamond
Describe the structure of graphite
- Each carbon atom is bonded to 3 other carbon atoms.
- Layers of hexagonal rings of carbon atoms form.
- There are weak intermolecular forces between layers.
- There is one delocalised electron per carbon atom.
Describe and explain the properties of graphite
- Graphite is soft/slippery because there are only weak intermolecular forces between layers which allow the layers to slide over one another.
- Graphite conducts electricity because there is one delocalised electron per carbon atom. The delocalised electrons can carry charge.
Describe the structure of diamond
- All carbon atom are covalently bonded to four other carbon atoms.
- There are no delocalised electrons.
Describe the properties of diamond
- Very hard.
- Very high melting point.
- Doesn’t conduct electricity as there are
no charged particles.
What are the uses of graphite? Why?
Electrodes: Graphite conducts electricity and has a high melting point.
Lubricant: Graphite is slippery (the layers in graphite can slide over each other).
Why is diamond used in cutting tools?
Diamond is very hard.
Describe the structure of ice
Ice has a lower density but takes up a greater volume when compared to water. This is due to the presence of hydrogen bonding between water molecules. These strong intermolecular forces stay rigid when ice forms and position the water molecules further apart than in liquid water. Therefore, a sample of ice will occupy a greater volume than the water it formed from.
What type of structure is iodine?
Iodine is a simple molecular compound. There are covalent bonds between the iodine atoms and weak temporary dipole interactions between the molecules.
Describe metallic bonding
Metallic bonding occurs in metals. The positive metal ions are held together in a sea of delocalised electrons.
Explain the electrical conductivity of ionic compounds
Ionic compounds cannot conduct electricity when solid. They are able to conduct electricity when molten or aqueous because in these states the ions are free to move and carry charge.
Explain the electrical conductivity of a covalent compound
Generally, covalent compounds do not conduct electricity because there are no free charged particles.
Explain the electrical conductivity of a metal
Metals are able to conduct electricity because the delocalised electrons are free to move and carry charge.