Practice Exercise 9.5: Calculating Silver Nitrate Requirement

How many grams of silver nitrate are required to produce 0.25 mol of silver sulfide?

The balanced equation is: 2 AgNO₃ + H₂S → Ag₂S + 2 HNO₃

Answer:

To produce 0.25 mol of silver sulfide (Ag₂S) from silver nitrate (AgNO₃), you would need 84.935 grams of silver nitrate according to stoichiometry and molar mass calculations.

Stoichiometry is an important concept in chemistry that involves calculating reactant quantities based on a balanced chemical equation. In this case, we are looking to determine the amount of silver nitrate needed to produce a specific amount of silver sulfide.

From the balanced equation, we can see that 2 moles of silver nitrate (AgNO₃) are needed to produce 1 mole of silver sulfide (Ag₂S). Therefore, if we require 0.25 moles of Ag₂S, we will need twice that amount of AgNO₃, which is 0.5 moles.

The molar mass of silver nitrate (AgNO₃) is 169.87 g/mol. By multiplying the number of moles needed (0.5 moles) by the molar mass, we can obtain the mass of silver nitrate required, which is 84.935 grams.

Therefore, 84.935 grams of silver nitrate are necessary to produce 0.25 mol of silver sulfide.
← Atomic structure protons neutrons and electrons How to calculate the number of formula units in a given mass of alumina al o →