Answer: The correct answer is Option 5.
Step-by-step explanation:
To calculate the number of moles, we use the equation:
Given mass of calcium cyanamide = 65 g
Molar mass of calcium cyanamide = 80.1 g/mol
Putting values in above equation, we get:
![\text{Moles of calcium cyanamide}=(65g)/(80.1g/mol)=0.811mol](https://img.qammunity.org/2020/formulas/chemistry/high-school/aceybr3hgrd8c8kud2s5l4guzyu91y5fm9.png)
Moles of water = 4.0 moles
The chemical equation for the reaction of calcium cyanide and water follows:
![CaCN_2+3H_2O\rightarrow CaCO_3+2NH_3](https://img.qammunity.org/2020/formulas/chemistry/high-school/xoiot8vo601p3z5psd1t41p2agmv74kysu.png)
By Stoichiometry of the reaction:
1 mole of calcium cyanamide reacts with 3 moles of water.
So, 0.811 moles of calcium cyanamide will react with =
of water.
As, given amount of water is more than the required amount. So, it is considered as an excess reagent.
Thus, calcium cyanamide is considered as a limiting reagent because it limits the formation of product.
By Stoichiometry of the reaction:
1 mole of calcium cyanamide produces 2 moles of ammonia.
So, 0.811 moles of calcium cyanamide will produce =
of ammonia.
Hence, the correct answer is Option 5.