GCSE follow-through concepts Flashcards

1
Q

Relative isotopic mass

A

The mass of the isotope relative to 1/12 of the mass of a carbon-12 atom

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2
Q

The mass of which atom are the masses of other atoms measured relative to?

A

Carbon-12

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3
Q

Relative isotomic mass (Ar)

A

The weighted average of the masses of the isotopes on a scale where the mass of a carbon-12 atom is exactly 12 units

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4
Q

Relative formula mass (Mr)

A

The weighted average of the masses of the formula units on a scale on which the mass of a carbon-12 atom is exactly 12 units

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5
Q

Molecular formula

A

Elements in a molecule and the number of atoms of each element

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6
Q

Empirical formula

A

Simplest whole number ratio of the atoms of each element in a compound

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7
Q

How do you calculate Mr?

A

add up each individually multiplied molecule in the compound

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8
Q

How do you calculate the percentage of an element in a compound?

A

Ar of that element
————————— x100
Total Mr

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9
Q

How do you calculate the mass of an element produced/required for a reaction?

A

Mr?
—— x mass
Mr √

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10
Q

How do you form empirical formulas?

A

% or mass
————– (then use a ratio)
Ar

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11
Q

What is the Avogadro constant?

A

The number of atoms per mole of the carbon-12 isotope

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12
Q

What’s a mole?

A

The amount of any substance containing as many particles as there are carbon atoms in 12g of the carbon-12 isotope.

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13
Q

What’s the mass, moles and Mr triangle?

A

Mass
—————
Moles | Mr

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14
Q

How do you work out the % of a product?

A

Mass produced
———————- x 100
Maximum possible

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15
Q

What are isotopes?

A

Isotopes are atoms of the same element with the same number of protons, yet a different number of neutrons, therefore the atomic number remains the same, whilst the mass number changes.

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16
Q

What does the nucleus of an atom contain and what are their charges?

A

Positively charged protons and neutral neutrons

17
Q

What’s in the shell of an atom and what are their charges?

A

Negatively charged electrons

18
Q

What are the masses of protons, neutrons and electrons?

A

Protons and neutrons = 1 unit
Electrons = 0 units (incredibly light)

19
Q

How are atoms charged and why?

A

They have no charge as there’s an equal number of protons and electrons

20
Q

What does the atomic/proton number show us?

A

The number of protons in an atom

21
Q

What does the nucleon/mass number show us?

A

The number of protons and neutrons in an atom

22
Q

How do we work out the number of neutrons in an atom?

A

Mass number - atomic number

23
Q

In which direction are groups on the periodic table and what do they show us?

A

Downwards, showing us the amount of outer electrons an atom has

24
Q

In which direction are periods on the periodic table and what do they show us?

A

Across, showing us the amount of orbits an atom has

25
When are ions formed?
When a non-metal and a metal come into close contact
26
Do metals or non-metals have a pretty full outer orbit?
Non-metals
27
Do ions have a charge? Why?
Yes, as they contain a different number of protons and electrons
28
How are covalent bonds formed and with what type of atoms?
Between non-metals, who have to lose or gain three or four electrons, therefore they bond to share pairs of electrons through a covalent bond
29
Which number do you look at on the periodic table for bonding questions?
The top one
30
What do elements with a covalent bond create?
A molecule
31
How are molecules charged?
They have no charge or loose electrons
32
What is molar mass measured in?
gmol-1
33
What are the different symbols commonly used for mass, moles and Mr?
Mr - M Mass - m Moles - n
34
Do you use the big numbers to calculate relative formula mass?
Never