Moles and Conversion of Mass Flashcards
Describe a mole
A measure of the amount of any substance
1 mole is exactly 6.02214076 × 10²³ particles or ‘things’
Recall Avogadro’s number
6.02214076 × 10²³
The number of units or ‘things’ in one mole of any substance
Describe the relationship between mass, moles and molar mass
n = m/M
- n = number of moles
- m = mass (g)
- M = molar mass (gmol⁻¹)
Describe molar mass
The mass of 1 mole of a substance in gmol⁻¹
For example:
M(C₅H₁₂)
= (5 × C) + (12 × H)
= (5 × 12.01) + (12 × 1.01)
= 72.12 g/mol
Define stoichiometry
The calculation of products and reactants in a chemical reaction
Describe limiting reagent
The reactant that gets consumed first in a chemical reaction and therefore limits how much product can be formed
Describe excess reactant
The reactant in excess after combining with all of the limiting reactant
Describe theoretical and experimental yield
The maximum amount of product that can be produced by a chemical reaction assuming perfect completion of reaction
The experimental yield may be less than the theoretical yield
Describe empirical formula
The simplest whole-number ratio of elements in a compound
Describe percentage composition
The percentage by mass of each of the different elements in the compound
Used to identify unknown compounds by comparing the percentage composition to one calculated from a known formula and to determine the empirical formula or the molecular formula [if given the relative molecular mass]
Recall how the mass of products and reactants are calculated
The law of conservation of mass states that in a chemical reaction, the total mass of reactants is equal to the total mass of products
For example:
2.43g = Mg
1.28g = O₂
Balance the equation
2Mg + O₂ → 2MgO
Find the number of moles
N[Mg] = 2.43/24.31 ≈ 0.10 moles of Mg
N[O₂] = 1.28/(16+16) ≈ 0.04 moles of O₂
Find the mole ratio
2Mg:O₂
2:1 ratio ∴ Oxygen is limiting and Magnesium is excess
O₂:2MgO
1:2 ratio
0.04 moles of O₂ = (0.04 × 2) moles of MgO
Find the mass
Mass of MgO = 0.08 × (24.31 + 16) = 3.2g
Recall how the percentage composition is calculated
[mass of element]/[molecular mass] × 100
Recall how the percentage yield is calculated
percentage (%) yield = [experimental yield]/[theoretical yield] × 100
Recall how the molecular formula of a compound it calculated from its empirical formula and molar mass
- Assume 100g of the compound, and determine the mass of each element.
- Determine the number of moles of each element.
- Find the simplest ratio (divide the number of moles by the smallest number then round)
- Calculate the empirical formula mass
- Determine how many empirical units there are in the molecule
- Multiply the empirical formula by the number of empirical units to find the molecular formula
For example:
49.4% = C, 5.2% = H, 16.6% = O, 28.8% = N, molar mass = 198.18g/mol
Mass in 100g
49.4 = C, 5.2 = H, 16.6 = O, 28.8 = N
Moles
C = 49.4/12.0 = 4.12
H = 5.2/1.01 = 5.15
O = 16.6/19.0 = 1.04 [smallest number]
N = 28.8/14.0 = 2.06
Simplest ratio
C = 4.12/1.04 = 3.9 = 4
H = 5.15/1.04 = 5
O = 1.04/1.04 = 1
N = 2.06/1.04 = 1.9 = 2
Empirical formula
C₄H₅ON₂
Empirical formula mass
= (4xC) + (5xH) + (1xO) + (2xN) = (4x12.0) + (5x1.01) + (1x16.0) + (2x14.01) = 97.07
Empirical units
[relative molecular mass]/[relative empirical mass] = 198.18/97.07 = 2.04 = 2 [round]
Molecular formula
= 2 x C₄H₅ON₂ = C₈H₁₀O₂N₄
