मराठी
महाराष्ट्र राज्य शिक्षण मंडळएचएससी विज्ञान (सामान्य) इयत्ता १२ वी

Calculate the pH of buffer solution composed of 0.01 M weak base BOH and 0.02 M of its salt BA. [Kb = 1.8 × 10–5 for weak base] - Chemistry

Advertisements
Advertisements

प्रश्न

Calculate the pH of buffer solution composed of 0.01 M weak base BOH and 0.02 M of its salt BA. [Kb = 1.8 × 10–5 for weak base]

टीपा लिहा
Advertisements

उत्तर

pOH = pKb +  log10 `(["Salt"])/(["Base"])`

Now, pKb = – log10 Kb

= 5 – log101.8

= 5 – 0.2553

pKb = 4.7447

Then, pOH = 4.7447 + log10 `0.02/0.01`

= 4.7447 + log102

= 4.7447 + 0.3010

pOH = 5.0457

∵ pH + pOH = 14

∴ pH = 14 – pOH

= 14 – 5.0457

= 8.9543 or 8.9

pH = 8.95

The pH of the buffer solution will be 8.95.

shaalaa.com
  या प्रश्नात किंवा उत्तरात काही त्रुटी आहे का?
2021-2022 (March) Set 1

संबंधित प्रश्‍न

A solution of NH4Cl and NH4OH acts as a buffer.


Choose the most correct answer:

Which of the Na following is a buffer solution?


Answer the following in one sentence :

How are basic buffer solutions prepared?


Answer the following in one sentence :

Classify the following buffers into different types :

CH3COOH + CH3COONa


Answer the following in one sentence :

Classify the following buffers into different types :

NH4OH + NH4Cl


Answer the following in one sentence :

Classify the following buffers into different types :

Cu(OH)2 + CuCl2


The pKb of weak base BOH [Kb(BOH) = 1 × 10-5] will be ______.


Name the buffer which is used to maintained pH of 8 to 10 for precipitation of cations III A group in qualitative analysis.


Write the formula to calculate pH of buffer solution.


Define buffer solution.


Write one application of the following buffer:

Citrate buffer


Write one application of the following buffer:

`"HCO"_3^-  + "H"_2"CO"_3`


Write one application of the following buffer:

NH4OH + NH4Cl


A buffer solution contains 0.3 mol dm–3 NH4OH (Kb = 1.8 × 10–5) and 0.4 mol dm–3 NH4Cl. Calculate pOH of the solution.


____________ forms a basic buffer solution.


On the basis of the equation \[\ce{pH}\] = – log \[\ce{[H+]}\], the \[\ce{pH}\] of 10–8 mol dm–3 solution of \[\ce{HCl}\] should be 8. However, it is observed to be less than 7.0. Explain the reason.


Which of the following combinations will constitute a buffer solution?


Define Acidic buffer solution.


What are buffer solutions? 


Calculate pKa of HF if Ka= 7.2 x 10-4.


Explain the types of buffers with example.


Explain buffer action of sodium acetate-acetic acid buffer.


Share
Notifications

Englishहिंदीमराठी


      Forgot password?
Use app×