To prepare a solution of potassium sulfate you need the grams, and grams is molarity × volume in litres × 174.2526 g/mol. A litre of 1 M takes 174.2526 g; 500 mL of 0.1 M takes 8.7126 g; 250 mL of 0.01 M takes 435.63 mg. Enter the strength you want and the volume you want it in, and the calculator returns the mass to weigh together with the same figure in milligrams and as a percentage strength.
The figure comes from the formula. Potassium sulfate is 2 × 39.0983 (K) + 32.06 (S) + 4 × 15.999 (O), which is 174.2526 g/mol, taking standard atomic weights, and every page here computes that sum rather than quoting it. Potassium makes up the largest share of the mass: 2 of the 7 atoms in a formula unit are potassium, and they account for 78.1966 g of the 174.2526 g, or 44.88% by mass. The derivation table below breaks the whole molecule down element by element.
Order of operations matters more than precision here. Dissolve the solid in rather less than the final volume, then make up to the mark once it has all gone into solution and come back to room temperature — warm solutions read low when they cool. If the calculated mass is under about 20 mg, prepare ten times the strength and dilute it tenfold by pipette instead, because C₁V₁ = C₂V₂ carries less error than a marginal weighing.
A chloride-free potassium fertiliser, preferred where salt sensitivity matters. It is much less soluble than the chloride, about 120 g per litre. At 174.2526 g/mol it is heavier than 25 of the 34 salts covered here, and that ranking matters more than it looks: gypsum has a molar mass of 172.164 g/mol, so a gram of it contains 1.21% more formula units than a gram of potassium sulfate. Weigh by mass and you are not weighing equal amounts of substance.
Two practical things move the result. Purity below 100% means the weighed mass overstates how much compound you have — at 98% assay, 3.4851 g of every 174.2526 g is not the compound — and any water picked up from the air does the same. Both are systematic, so they shift every solution made from that jar in the same direction.
The formula
c- The molarity you want, in mol/L
V- The volume you want to make, in millilitres
174.2526- The molar mass of potassium sulfate in g/mol, derived from its formula
m- The mass of potassium sulfate to weigh out, in grams
How it works, step by step
- Enter the molarity you want, in mol/L.
- Enter the volume you want to make, in millilitres.
- The two are multiplied together and by 174.2526 g/mol.
- The result is the mass to weigh; dissolve it in part of the volume and then make up to the mark.
Worked examples
250 mL of 0.1 M potassium sulfate
Weigh 4.35632 g. That is 0.1 M × 0.25 L × 174.2526 g/mol, and it comes to 4356.32 mg if your balance is set to milligrams. Dissolve in about 175 mL first, then make up to 250 mL.
500 mL of 0.5 M potassium sulfate
Weigh 43.5632 g. That is 0.5 M × 0.5 L × 174.2526 g/mol, and it comes to 43,563.2 mg if your balance is set to milligrams. Dissolve in about 350 mL first, then make up to 500 mL.
1000 mL of 1 M potassium sulfate
Weigh 174.253 g. That is 1 M × 1 L × 174.2526 g/mol, and it comes to 174,253 mg if your balance is set to milligrams. Dissolve in about 700 mL first, then make up to 1000 mL.
How to read your score
Frequently asked questions
What is the molar mass of potassium sulfate (K2SO4)?
It is 174.2526 g/mol. That is the sum of the standard atomic weights of every atom in the formula: 2 × 39.0983 (K) + 32.06 (S) + 4 × 15.999 (O). One mole of potassium sulfate therefore weighs 174.2526 g, and a gram of it is 5.7388 mmol.
What percentage of potassium sulfate is potassium?
44.88% by mass. Each formula unit contains 2 potassium atoms contributing 78.1966 g of the 174.2526 g total, so 100 g of potassium sulfate contains 44.88 g of potassium and a kilogram contains 448.75 g of it.
How much potassium sulfate do I need for 1 litre of 1 M solution?
174.2526 g — the molar mass in grams, which is what a 1 molar solution means. For 1 L of 0.1 M it is 17.4253 g, and for 1 L of 0.01 M it is 1.74253 g.
How much for 100 mL of 0.1 M?
1.74253 g. The volume is a tenth of a litre and the strength a tenth of molar, so the mass is a hundredth of 174.2526 g. In milligrams that is 1742.53 mg.
Do I dissolve the solid first or make up the volume first?
Dissolve first, in perhaps 70% of the final volume, then make up to the mark. Adding solid to a full flask overshoots the volume and leaves the solution weak, and undissolved solid at the mark means the strength keeps changing as it goes in.
Can I dilute a stock solution instead of weighing?
Yes, and it is more accurate for small amounts. C₁V₁ = C₂V₂: to get 500 mL of 0.01 M from a 0.5 M stock, take 10 mL of stock and make up to 500 mL. Weighing the 871.26 mg that 500 mL of 0.01 M needs directly is the harder of the two.
Solution recipes for potassium sulfate
| Element | Atoms | Atomic weight | Contribution (g/mol) | By mass |
|---|---|---|---|---|
| Potassium (K) | 2 | 39.0983 | 78.1966 | 44.88% |
| Oxygen (O) | 4 | 15.999 | 63.996 | 36.73% |
| Sulfur (S) | 1 | 32.06 | 32.06 | 18.4% |
| Total — one mole of potassium sulfate | 174.2526 | 100% |
Standard atomic weights, IUPAC 2021. The contribution column is atoms × atomic weight, and the total is the molar mass this page uses: 174.2526 g/mol.
| Target | for 100 mL | for 250 mL | for 500 mL | for 1 L |
|---|---|---|---|---|
| 0.001 M | 17.4253 mg | 43.5632 mg | 87.1263 mg | 174.253 mg |
| 0.005 M | 87.1263 mg | 217.816 mg | 435.632 mg | 871.263 mg |
| 0.01 M | 174.253 mg | 435.632 mg | 871.263 mg | 1.74253 g |
| 0.05 M | 871.263 mg | 2.17816 g | 4.35632 g | 8.71263 g |
| 0.1 M | 1.74253 g | 4.35632 g | 8.71263 g | 17.4253 g |
| 0.15 M | 2.61379 g | 6.53447 g | 13.0689 g | 26.1379 g |
| 0.2 M | 3.48505 g | 8.71263 g | 17.4253 g | 34.8505 g |
| 0.25 M | 4.35631 g | 10.8908 g | 21.7816 g | 43.5632 g |
| 0.5 M | 8.71263 g | 21.7816 g | 43.5632 g | 87.1263 g |
| 1 M | 17.4253 g | 43.5632 g | 87.1263 g | 174.253 g |
| 2 M | 34.8505 g | 87.1263 g | 174.253 g | 348.505 g |
Each cell is molarity × volume in litres × 174.2526 g/mol. Dissolve the solid first and then make up to the marked volume — adding solid to a full volume overshoots it.
| Compound | Formula | Molar mass (g/mol) | Millimoles in 1 g |
|---|---|---|---|
| Potassium iodide | KI | 166.0028 | 6.024 |
| Silver nitrate | AgNO3 | 169.8722 | 5.8868 |
| Gypsum | CaSO4·2H2O | 172.164 | 5.8084 |
| Potassium sulfate (this page) | K2SO4 | 174.2526 | 5.7388 |
| Epsom salt | MgSO4·7H2O | 246.466 | 4.0574 |
| Sodium thiosulfate pentahydrate | Na2S2O3·5H2O | 248.1715 | 4.0295 |
| Copper(II) sulfate pentahydrate | CuSO4·5H2O | 249.677 | 4.0052 |
Ordered by molar mass. The last column is 1000/M, which is the number a weighed gram actually gives you.