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Ionic Solids Lowersixth Science Chemistry
 

Ionic Solids Lowersixth Science ChemistryOnline version

Test your grasp on ionic solids in chemistry.

by YAKILI LMS
1

They are good insulators in the solid state.

2

They exclude any lattice energy from contributing to stability.

3

They dissolve to yield ions in water.

4

They are always formed from post-transition metals.

5

Their bonds are all purely metallic in character.

6

They dissolve without dissociating into ions in water.

7

They exhibit ionic bonding between oppositely charged ions.

8

They have high melting points due to lattice energy.

9

They conduct electricity well as solids.

10

Ionic solids are composed of a lattice of ions held by strong electrostatic forces.

11

Ionic solids are composed of neutral atoms held together by covalent bonds.

12

They are usually insoluble in nonpolar solvents.

13

They have low melting points compared to covalent molecular solids.

14

They have low dehydration energy when hydrated.

15

All ionic solids are colorless and transparent.

16

They have very high volatility and evaporate easily at room temperature.

17

They are formed by exclusively covalent molecules.

18

They do not interact with light and are completely opaque in all colors.

19

They increase in solubility in water as temperature decreases.

20

They have low electrical conductivity in the solid state.

21

They readily form polymers in solid form.

22

They are weaker conductors than metals in the solid state.

23

They are typically liquids at room temperature.

24

NaCl is an example of an ionic solid.

25

They cannot form any ions when dissolved in water.

26

They are typically hard and brittle.

27

Their solution conductivity is independent of concentration.

28

They gain electrons to become cations in the solid state.

29

They are typically soft and malleable like metals.

30

They are always soluble in all solvents regardless of polarity.

31

They cannot be composed of more than two different ions in the lattice.

32

They conduct electricity when molten or dissolved, but not as solids.

33

All ionic solids exhibit metallic bonding characteristics.

34

They form bonds that are purely ionic with no partial covalency.

35

They can conduct electricity when molten.

36

Ionic solids do not form any crystalline structure.

37

They form crystalline lattices.

38

They are never hard or brittle; they are always flexible.

39

Their boiling points are generally lower than those of covalent network solids.

40

They are formed from metal cations and nonmetal anions.

41

The lattice energy increases with higher ionic charges and smaller ionic radii.

42

Their crystal structures are always simple cubic.

43

They conduct electricity when molten or dissolved in water.

44

They are brittle and shatter when struck.

45

They are usually soluble in water, depending on lattice energy.

46

The repeating unit in a crystal lattice is a unit cell.

47

Ionic solids are composed of alternating cations and anions in a lattice.

48

They have high melting points due to strong electrostatic forces.

49

Ionic solids are good conductors of electricity in solid state.

50

Defects in ionic crystals can affect conductivity.

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