The atomic radius decreases across Period 3 because the force of attraction between the nucleus and...

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Transcript of The atomic radius decreases across Period 3 because the force of attraction between the nucleus and...

Page 1: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.
Page 2: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

Page 3: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 4: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 5: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 6: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 7: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 8: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 9: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 10: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 11: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

There are more electrons, but a negligible increase in shielding because each extra electron enters the same shell.

Page 12: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The first ionisation enthalpy increases across Period 3. The force of attraction between the nucleus and the outer electron increases.

Page 13: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The first ionisation enthalpy increases across Period 3. The force of attraction between the nucleus and the outer electron increases.

Page 14: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The first ionisation enthalpy increases across Period 3. The force of attraction between the nucleus and the outer electron increases.

Page 15: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 16: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 17: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 18: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 19: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The number of protons in the nucleus and the nuclear charge increase.

Page 20: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

There are more electrons, but little increase in shielding as each extra electron enters the same shell.

Page 21: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The density of an element is its mass per unit volume. It is a measure of how closely its particles are packed.

Page 22: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The density of the metals increases across the period.

Page 23: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

Silicon has a densely packed giant covalent structure.

Page 24: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

Phosphorus and sulphur exist as the simple molecules P4 and S8, and are less dense.

Page 25: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

Chlorine and argon are both gases at room temperature, so their densities are very low.

Page 26: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

When a substance melts or boils, attractive forces holding the particles together must be overcome.

Page 27: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

The stronger the attractive forces are, the more energy is needed to overcome them.

Page 28: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

Sodium, magnesium and aluminium are all metals. They have strong metallic bonding.

Page 29: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

Silicon has a giant covalent structure in which its atoms are joined by strong covalent bonds.

Page 30: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

There are weak instantaneous dipole–induced dipole attractions between phosphorus, sulphur and chlorine molecules.

Page 31: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

There are weak instantaneous dipole–induced dipole attractions between argon atoms. Little energy is needed to overcome them.

Page 32: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

Sodium, magnesium and aluminium are metals with delocalised electrons that can move and carry charge.

Page 33: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

Sodium, magnesium and aluminium are metals with delocalised electrons that can move and carry charge.

Page 34: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

Sodium, magnesium and aluminium are metals with delocalised electrons that can move and carry charge.

Page 35: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

Each aluminium atom contributes more delocalised electrons than sodium or magnesium.

Page 36: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

Silicon is a semiconductor. It is used in computer circuitry.

Page 37: The atomic radius decreases across Period 3 because the force of attraction between the nucleus and the electrons increases.

Phosphorus, sulphur and chlorine are simple molecules with no free electrons.Argon exists as single atoms.