Definitions Flashcards

1
Q

Define the mass number of an atom.

A

The number of protons + the number of neutrons

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
2
Q

Define relative atomic mass of an element.

A

The average mass of an atom of an element
Compared to 1/12th the mass of a carbon-12 atom

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
3
Q

Define the term enthalpy change

A

Heat change at a constant pressure

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
4
Q

Define the term enthalpy change of combustion

A

The energy change when one mole of fuel is burned completely in oxygen in standard states and conditions.

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
5
Q

Define the term enthalpy change of formation

A

The energy change when one mole of product is formed from its constituent elements in standard states and conditions

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
6
Q

Define the first ionisation energy of an element.

A

The enthalpy change when removing one mole of electrons from one mole of gaseous atoms to form one mole of positive ions

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
7
Q

Define the atomic number of an element

A

The number of protons in the nucleus of an atom

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
8
Q

Define the term electron affinity of an element.

A

The enthalpy change from the formation of one mole of negative ions from one mole of atoms in a gaseous state

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
9
Q

Define the term enthalpy of hydration of an ion

A

The enthalpy change when one mole of gaseous ions forms aqueous ions

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
10
Q

Define the term lattice enthalpy of dissociation

A

The enthalpy change when separating one mole of an ionic solid into its gaseous ions

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
11
Q

Define the term perfect ionic model

A

Only ionic bonding, no covalent bonds, ions are point charges, ions are spherical

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
12
Q

Define the term enthalpy change of solution

A

The enthalpy change when one mole of an ionic substance dissolves in water to give a solution of infinite dilution

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
13
Q

Define the term lattice enthalpy of formation

A

The enthalpy change when forming one mole of ionic solid from its separated gaseous ions

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
14
Q

Define the term enthalpy of atomisation

A

The enthalpy change when one mole of gaseous atoms is formed from the element in standard states under standard conditions

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
15
Q

Define the term electronegativity

A

The ability of an atom to attract the pair of electrons in a covalent bond

How well did you know this?
1
Not at all
2
3
4
5
Perfectly
16
Q

Define the term bond dissociation enthalpy

A

The energy required to break one mole of gaseous bonds to form one mole of gaseous atoms

17
Q

Define the term enthalpy of hydrogenation

A

The enthalpy change when one mole of double bonds is reduced to single bonds using gaseous hydrogen

18
Q

Define Hess’ Law

A

The enthalpy change of a reaction is independent of the path taken

19
Q

What does amphoteric mean?

A

Can act as either a base or an acid.