Molality Formula Calculator
Calculate molality from masses, moles, or molarity with AI-powered step-by-step solutions
What is Molality?
Molality (, often written ) expresses concentration per mass of solvent:
where is the amount of dissolved solute in moles and is the mass of the solvent alone, in kilograms. The unit is mol/kg, written m and read "molal": a 0.400 m solution contains 0.400 mol of solute per kilogram of solvent.
Since moles come from mass and molar mass, the expanded form is
with masses in grams and kilograms respectively and the molar mass in g/mol.
| Molality | Molarity | |
|---|---|---|
| Denominator | kg of solvent | L of solution |
| Unit | mol/kg (m) | mol/L (M) |
| Temperature | independent | varies with |
Mass does not expand when a solution is warmed, so molality is preferred whenever temperature changes — which is why the colligative-property laws, such as freezing-point depression , are written in molality rather than molarity.
How to Calculate Molality
Step-by-Step
- Identify solute and solvent. The solvent is the component present in excess, usually water.
- Convert the solute mass to moles: , taking from the chemical formula.
- Get the solvent mass in kilograms. If the problem quotes the mass of solution, subtract the solute first: . Then divide grams by 1000.
- Divide: .
- Round to the fewest significant figures among the measured inputs.
Converting Molarity to Molality
This needs the solution density . Take exactly 1 L of solution: it weighs grams and contains moles, i.e. grams, of solute. The solvent is the difference, so
with in g/mL, in mol/L, and in g/mol. Density is the piece most often missing: molarity alone can never be converted to molality.
Sanity Check
For a dilute aqueous solution ( g/mL, very little solute) the two concentrations are numerically close, . Treat that as a check on your arithmetic, never as a shortcut.
Common Mistakes to Avoid
- Dividing by the mass of the solution — the denominator is solvent only. When a problem gives the solution mass, subtract the solute before dividing.
- Leaving the solvent mass in grams — the formula demands kilograms; skipping the factor of 1000 inflates the answer a thousandfold.
- Confusing molality with molarity — molal is mol/kg and molar is mol/L, and the symbols m and M differ only in case. Check which denominator the question describes.
- Using the wrong molar mass — for a hydrate such as , the water of crystallisation counts toward the mass of the sample.
- Dropping the van 't Hoff factor — molality counts formula units, so needs ( for NaCl, which yields two ions).
- Assuming the density is 1.00 g/mL — that holds only for near-pure water, and a molarity conversion is very sensitive to it.
示例题目
常见问题
Molality is moles of solute divided by kilograms of solvent: b = n(solute) / m(solvent in kg). Written from masses it becomes b = (mass of solute / molar mass) / (mass of solvent in kg). The unit mol/kg is abbreviated m and read 'molal'.
Molality divides by the mass of solvent in kilograms; molarity divides by the volume of the whole solution in litres. Because mass does not change with temperature while volume does, molality is temperature-independent and molarity is not. For dilute aqueous solutions the two values happen to be numerically close.
You need the solution density. Take 1 L of solution: its mass is 1000 times the density in g/mL, and it holds c moles, or c times the molar mass in grams, of solute. Subtract to get the solvent mass, convert to kilograms, and divide the moles by it — giving b = 1000c / (1000p - cM).
Those colligative effects appear precisely when a solution is heated or cooled, and molarity shifts with temperature because the solution's volume changes. Molality is built on masses, which do not change, so Kf and Kb are tabulated as constants per mol/kg. The van 't Hoff factor i must still be included for solutes that dissociate into ions.
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