- Hydrogen-ion concentration [H⁺]
- 1e-7mol/L
7.00
Open with these values7.00pH
Result: 7.00 pHpH is the negative base-10 logarithm of the hydrogen-ion concentration: pH = −log₁₀([H⁺]), with [H⁺] in mol/L. Neutral water is 1 × 10⁻⁷ mol/L and gives pH 7. Each whole pH unit is a tenfold change in [H⁺], and pOH = 14 − pH holds in dilute solution at 25 °C.
7.00
Open with these values3.00
Open with these values4.50
Open with these valuespH = −log₁₀([H⁺])
The scale is logarithmic, so pH 5 is not slightly more acidic than pH 6 — it is ten times. Two steps, as from pH 3 to pH 5, is a hundredfold change in [H⁺].
That 14 is the ion product of water, a measured quantity that shifts with temperature. At 0.001 mol/L the pH is 3 and the pOH 11.
The pH is defined over the activity of the hydrogen ions. In dilute solution activity and concentration coincide; in concentrated solution they do not.
The field takes moles per litre, from 1 × 10⁻¹⁴ up to 10. Zero is ruled out because the logarithm of zero is undefined.
pH 5 is a little more acidic than pH 6.
It is ten times more acidic. Each whole pH unit is a tenfold change in [H⁺].
pOH = 14 − pH is a universal rule.
It holds in dilute aqueous solution at 25 °C. The 14 is the ion product of water and shifts with temperature.
A concentration of 0 mol/L gives pH 0.
The logarithm of zero is undefined, so the field starts at 1 × 10⁻¹⁴ mol/L. pH 0 belongs to 1 mol/L instead.
| [H⁺] in mol/L | pOH at 25 °C | pH |
|---|---|---|
| 0.1 | 13 | 1.00 |
| 0.001 | 11 | 3.00 |
| 0.0001 | 10 | 4.00 |
| 0.0000316 | 9.50 | 4.50 |
| 0.0000001 | 7 | 7.00 |
| 0.00000000001 | 3 | 11.00 |
Take the negative base-10 logarithm of the hydrogen-ion concentration: pH = −log₁₀([H⁺]), with [H⁺] in moles per litre. A solution at 0.001 mol/L has pH 3, and its pOH is 14 − 3 = 11.
pH measures how acidic or basic a water-based solution is, usually on a scale from 0 to 14. A pH of 7 is neutral, below 7 is acidic and above 7 is basic.
Because hydrogen-ion concentrations span roughly fourteen orders of magnitude, from about 1 mol/L down to 10⁻¹⁴ mol/L. The base-10 logarithm compresses that into a readable scale, so each whole pH unit is a tenfold change in [H⁺].
pH measures the hydrogen-ion concentration, pOH the hydroxide-ion concentration. In dilute aqueous solution at 25 °C they add up to 14, so pOH = 14 − pH. That 14 is the ion product of water and shifts with temperature, so the rule is not universal.
Moles per litre. Pure neutral water is 1 × 10⁻⁷ mol/L, which gives pH 7, and the concentration must be greater than zero because the logarithm of zero is undefined. The pH itself carries no unit.
Information, not professional advice.
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