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A stock solution was created by adding 0.1042 g of lead (II) nitrate to a 100.00 mL volumetric flask and diluting to volume with deionized water. A diluted solution was then created by removing 5.00 mL of the stock solution and placing into into a 50.00 mL volumetric flask and then diluting to volume with deionized water. What is the concentration (in molarity, M) of the diluted solution

User Christo
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1 Answer

21 votes
21 votes

Answer: The molarity of diluted solution is 0.00031 M

Step-by-step explanation:

Molarity of a solution is defined as the number of moles of solute dissolved per liter of the solution.


Molarity=(n* 1000)/(V_s)

where,

n = moles of solute


V_s = volume of solution in ml

moles of
Pb(NO_3)_2 =
\frac{\text {given mass}}{\text {Molar mass}}=(0.1042g)/(331.2g/mol)=0.00031mol

Now put all the given values in the formula of molality, we get


Molarity=(0.00031mol* 1000)/(100ml)=0.0031M

According to the dilution law,


(stock)M_1V_1=M_2V_2(dilute)

Putting in the values we get:


0.0031* 5.00=M_2* 50.00


M_2=0.00031M

Therefore, the molarity of diluted solution is 0.00031 M

User Ali Qorbani
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