Mole Fraction Calculator
Find mole fractions from moles or masses and use them for partial pressures, step by step
The Mole Fraction Formula
The mole fraction of a component is the share of the mixture's particles that are :
- — moles of component .
- — moles of every component, solvent included.
- — a pure number between 0 and 1, with no units, because moles cancel.
Two consequences follow immediately. The fractions of all components sum to exactly one,
which gives a free check on any answer, and the relation inverts to .
Why it is used. Because it is a ratio of amounts rather than of volumes, mole fraction is independent of temperature — unlike molarity, which shifts as a solution expands. That makes it the natural composition variable in the laws that treat all particles alike: Dalton's law of partial pressures, , and Raoult's law for an ideal solution, . Both assume ideal behaviour: for gases, no intermolecular forces; for solutions, that A-B interactions resemble A-A and B-B interactions.
How to Calculate a Mole Fraction
From moles
- Add up the moles of every component to get .
- Divide each component's moles by that total.
- Check that the fractions add to 1.000.
From masses
Masses cannot be added directly — convert each one to moles first:
A 50:50 mixture by mass is nowhere near 50:50 by mole unless the two molar masses happen to match.
From a volume of solution
A volume on its own is not an amount. Convert it with the concentration, , or for a pure liquid with the density and molar mass, . Only then can it enter the sum.
Back to moles
If only and are known for a two-component mixture, use and .
Significant figures
A mole fraction is a quotient, so it takes the fewest significant figures among the inputs. Because the fractions must sum to 1, rounding each one independently can leave a sum such as 1.001 — quote the components consistently and note the total is exact.
Common Mistakes to Avoid
- Leaving the solvent out of the total. includes the solvent. Dividing solute moles by solute moles alone always gives 1.
- Adding masses instead of moles. 46.0 g of ethanol and 100.0 g of water is not a mole fraction of 0.315; converting first gives 0.152.
- Attaching units. A mole fraction is dimensionless. Writing 0.300 mol for confuses it with an amount.
- Using mole fraction where molarity is required. They answer different questions; only molarity carries a per-litre meaning.
- Forgetting that a dissolved salt splits into ions when the question asks about particles rather than formula units.
- Skipping the sum check. If the fractions do not add to 1, a component has been left out of the denominator.
示例题目
常见问题
x_A = n_A / n_total, where n_total is the sum of the moles of every component including the solvent. The result is dimensionless and lies between 0 and 1, and the fractions of all components sum to exactly 1.
Multiply by the total: n_A = x_A x n_total. In a two-component mixture where only x_A and the moles of B are known, use x_B = 1 - x_A and n_total = n_B / x_B, then multiply.
A volume is not an amount on its own. For a solution, multiply by the molarity after converting to litres: n = c x V. For a pure liquid, multiply by the density to get a mass, then divide by the molar mass: n = (density x volume) / molar mass.
Mole percent is simply the mole fraction times 100. A mole fraction of 0.152 is 15.2 mol %. Mole percents across a mixture sum to 100, just as the fractions sum to 1.
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