of sodium iodide solution gave silver iodide when treated with excess of silver nitrate solution. The molarity of the sodium iodide solution is _____ M. (Nearest Integer value)
(Given : Na = , I = , Ag = , N = , O = )
of sodium iodide solution gave silver iodide when treated with excess of silver nitrate solution. The molarity of the sodium iodide solution is _____ M. (Nearest Integer value)
(Given : Na = , I = , Ag = , N = , O = )
Correct answer:1
Standard Method
Given: Volume of sodium iodide solution = , mass of silver iodide formed = .
Find: The molarity of the sodium iodide solution.
The reaction is
Molar mass of is
Moles of formed are
From the balanced equation, and are in ratio, so moles of = .
Volume of solution in litres is
Therefore, molarity is
Nearest integer value is .
Therefore, the molarity of the sodium iodide solution is .
Stepwise Stoichiometric Calculation
Given: Silver iodide precipitate mass = , sodium iodide solution volume = .
Find: Molarity of sodium iodide solution.
After rounding to the nearest integer, the answer is .
The numerical value answer is 1.
Using the wrong stoichiometric ratio is a common mistake. The reaction between and is , so moles of equal moles of . Do not introduce any extra factor.
Forgetting to convert into litres gives an incorrect molarity. Molarity must always be calculated using volume in litres, so use .
Calculating the molar mass of incorrectly leads to the wrong mole value. Add Ag = and I = carefully to get .
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