What is the $"molality"$ of a $10g$ mass of salt, whose formula mass was $36.46gmol^-1$ , that is dissolved in a $100g$ mass of solvent?

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What is the $"molality"$ of a $10g$ mass of salt, whose formula mass was $36.46gmol^-1$ , that is dissolved in a $100g$ mass of solvent?

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Answer 1 · 2017-07-26T15:55:28

$"Molality"<3*mol*kg^-1.$

Explanation:

By definition, $"Molality"="Moles of solute"/"Kilograms of solvent"$ .

Here you have a 10% solution, and here I ASSUME that you mean

$w/wxx100%$ , i.e. $"Mass of solute"/"Mass of solvent"xx100%$

And so we have a $10*g$ mass of solute, in a $100*g$ mass of solvent (which is reasonably assumed to have a $100*mL$ volume; this is another unspoken assumption; the solvent is clearly water).

And finally $"molality"-=((10*g)/(36.46*g*mol^-1))/(0.100*kg)=2.74*mol*kg^-1$ .

Note that at these concentrations, $"molality"$ is equivalent to $"molarity"$ .

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What is the $"molality"$ of a $10g$ mass of salt, whose formula mass was $36.46gmol^-1$ , that is dissolved in a $100g$ mass of solvent?

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What is the "molality""molality" of a 10*g10*g mass of salt, whose formula mass was 36.46*g*mol^-136.46*g*mol^-1, that is dissolved in a 100*g100*g mass of solvent?

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What is the $"molality"$ of a $10g$ mass of salt, whose formula mass was $36.46gmol^-1$ , that is dissolved in a $100g$ mass of solvent?