Answer:
4.18 g
Explanation:
The formula for the calculation of moles is shown below:
[tex]moles = \frac{Mass\ taken}{Molar\ mass}[/tex]
Given: For Li
Given mass = 2.50 g
Molar mass of Li = 6.94 g/mol
Moles of Li = 2.50 g / 6.94 g/mol = 0.3602 moles
Given: For [tex]N_2[/tex]
Given mass = 2.50 g
Molar mass of [tex]N_2[/tex] = 28.02 g/mol
Moles of [tex]N_2[/tex] = 2.50 g / 28.02 g/mol = 0.08924 moles
According to the given reaction:
[tex]6Li+N_2\rightarrow 2Li_3N[/tex]
6 moles of Li react with 1 mole of [tex]N_2[/tex]
1 mole of Li react with 1/6 mole of [tex]N_2[/tex]
0.3602 mole of Li react with [tex]\frac {1}{6}\times 0.3602[/tex] mole of [tex]N_2[/tex]
Moles of [tex]N_2[/tex] that will react = 0.06 moles
Available moles of [tex]N_2[/tex] = 0.08924 moles
[tex]N_2[/tex] is in large excess. (0.08924 > 0.06)
Limiting reagent is the one which is present in small amount. Thus,
Li is limiting reagent.
The formation of the product is governed by the limiting reagent. So,
6 moles of Li gives 2 mole of [tex]Li_3N[/tex]
1 mole of Li gives 2/6 mole of [tex]Li_3N[/tex]
0.3602 mole of Li react with [tex]\frac {2}{6}\times 0.3602[/tex] mole of [tex]Li_3N[/tex]
Moles of [tex]Li_3N[/tex] = 0.12
Molar mass of [tex]Li_3N[/tex] = 34.83 g/mol
Mass of [tex]Li_3N[/tex] = Moles × Molar mass = 0.12 × 34.83 g = 4.18 g
Theoretical yield = 4.18 g
