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Calculate the pH of a buffer which is 0.2moldm^-3 with respect to ammonium sulphate and 0.1 moldm^-3 with respect to ammonia. (Ka of NH4^+ = 5.6 x 10^-10 moldm^-3.

Calculate the pH of a buffer which is 0.2moldm^-3 with respect to ammonium sulphate-example-1
User Fang Zhang
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14 votes

Answer:

Step-by-step explanation:

Here, we want to get the pH of the buffer

To get this, we use the following equation:


pH=pK_a\text{ + }log\text{ }(\lbrack A^-\rbrack)/(\lbrack HA\rbrack)

Where:


\text{pKa = -log(Ka)}

We have the A^- as the concentration of the salt and HA is that of the weak acid

Now, let us calculate the pKa as follows:


\text{pKa = -log (5.6 }*10^(-10))\text{ = 9.25}

From Let us get the concentration of the weak base and that of the salt:

For ammonium sulphate, we have:


2\text{ moles of the ammonium ion from the sulphate}

This means we have the concentration of the a

User James Lam
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