calculate the pH of 0.0125M NH3 Kb=1.8x10-5

To calculate the pH of a 0.0125M NH3 solution, we first need to calculate the concentration of OH- ions resulting from the dissociation of NH3 in water.

NH3 + H2O ⇌ NH4+ + OH-

We can use the Kb expression to set up an equation for the reaction:

Kb = [NH4+][OH-] / [NH3]

We know the initial concentration of NH3 is 0.0125M. Let's assume x moles of NH3 react to form x moles of NH4+ and OH- ions:

Kb = [x][x] / [0.0125 - x]

Given that Kb = 1.8 x 10^(-5), we can set up the equation:

1.8 x 10^(-5) = x^2 / [0.0125 - x]

Since Kb is very small, we can assume that x is also very small, so [0.0125 - x] is approximately 0.0125. Then:

x^2 ≈ (1.8 x 10^(-5))(0.0125)

x^2 ≈ 2.25 x 10^(-7)

x ≈ √(2.25 x 10^(-7))

x ≈ 1.5 x 10^(-4)

Now we have determined that the concentration of OH- ions is approximately 1.5 x 10^(-4) M. To find the pH, we will first calculate the pOH using the following formula:

pOH = -log[OH-]

pOH = -log (1.5 x 10^(-4))

pOH ≈ 3.82

Finally, we can determine the pH using the relationship between pH and pOH:

pH + pOH = 14

pH = 14 - pOH

pH = 14 - 3.82

pH ≈ 10.18

So the pH of the 0.0125M NH3 solution is approximately 10.18.