The molality of a H_2$$SO_41.06 , \text{g/cm}^3$$ is:
- A
- B
- C
- D
The molality of a H_2$$SO_41.06 , \text{g/cm}^3$$ is:
Correct answer:A
Standard Method
Given: Molarity of HSO is and density of solution is .
Find: Molality of the solution.
Take of solution. Then moles of HSO present are .
Mass of solution:
Mass of solute using molar mass :
Mass of solvent:
Now apply the definition of molality:
This is equivalently written as:
Therefore, the correct option is A.
Definition-Based Expansion
Given: Molarity is moles of solute per litre of solution, while molality is moles of solute per kilogram of solvent.
Find: Molality corresponding to the given solution.
For of solution, the number of moles of HSO is .
Using density, total mass of this solution is:
Mass of HSO dissolved is:
So, mass of water present is:
Convert to kilogram:
Hence,
The solution also expresses this value as . Therefore, the correct option is A.
Using molarity directly as molality is incorrect because molarity is based on volume of solution, whereas molality is based on mass of solvent. First convert the given data into kilograms of solvent.
Taking as the mass of solvent is wrong because it is the mass of the entire solution. Subtract the mass of HSO to get the mass of water.
Forgetting to convert grams to kilograms gives a value off by a factor of . Use , not , in the molality formula.
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