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

Calculate the pOH of 10-8 M of HCl.

Advertisements
Advertisements

प्रश्न

Calculate the pOH of 10-8 M of HCl.

संख्यात्मक
Advertisements

उत्तर

10-8 M indicates a very dilute solution. Thus, H+ ions of water cannot be ignored. But dissociation of water is suppressed due to common ion effect.

∴ [H+] ≠ 10-7 M but less than 10-7 M.

\[\ce{H2O ⇌ \underset{\ce{(10^{-8} + α)}}{H^+ } + \underset{\text{α}}{OH-}}\]

Kw = [H+] [OH] = (10–8 + α) α

∴ α2 + α × 10-8 - 10-14 = 0

Solving above quadratic equation, we get

α = 0.95 × 10–7

∴ [H+] = 10-8 + 0.95 × 10-7 = 1.05 × 10-7 M

∴ pH = – log10[H+]

= - log10[1.05 × 10-7]

= 6.9788

∴ pOH = 14 – 6.9788 = 7.0212 ≈ 7

shaalaa.com
  या प्रश्नात किंवा उत्तरात काही त्रुटी आहे का?
पाठ 3: Ionic Equilibria - Very short answer questions

संबंधित प्रश्‍न

Assuming complete dissociation, calculate the pH of the following solution:

0.005 M NaOH 


Calculate the pH of the following solutions:

0.3 g of Ca(OH)dissolved in water to give 500 mL of solution.


Calculate the pH of the following solution:

1mL of 13.6 M HCl is diluted with water to give 1 litre of solution.


The pH of 0.005M codeine (C18H21NO3) solution is 9.95. Calculate its ionization constant and pKb.


If 0.561 g of KOH is dissolved in water to give 200 mL of solution at 298 K. Calculate the concentrations of potassium, hydrogen and hydroxyl ions. What is its pH?


Calculate the pH of the resultant mixtures: 10 mL of 0.01M H2SO4 + 10 mL of 0.01M Ca(OH)2.


The pH of 10−8 M of HCl is ______.


Answer the following in one sentence:

The pH of a solution is 6.06. Calculate its H+ ion concentration.


Which of the following when dissolved in water results in neutral solution?


The pH of a monoacidic weak base is 11.5. The concentration of OH ions in this solution is ____________ M.


Following solutions were prepared by mixing different volumes of NaOH of HCl different concentrations.

i. 60 mL `"M"/10` HCl + 40 mL `"M"/10` NaOH

ii. 55 mL `"M"/10` HCl + 45 mL `"M"/10` NaOH

iii. 75 mL `"M"/5` HCl + 25 mL `"M"/5` NaOH

iv. 100 mL `"M"/10` HCl + 100 mL `"M"/10` NaOH

pH of which one of them will be equal to 1?


Acidity of \[\ce{BF3}\] can be explained on the basis of which of the following concepts?


If pKb for CN at 25°C is 4.7, the pH of 0.5 M aqueous NaCN solution is ______.


Derive the relationship between pH and pOH.


Neutral solutions have the pH of ______.


A sample of air turns lime water milky and also turns acidified potassium dichromate green in aqueous solution has low pH. This is due to the presence of pollutants.


A buffer solution is prepared in which the concentration of NH3 is 0.30 M and the concentration of \[\ce{NH^+_4}\] is 0.20 M. If the equilibrium constant, Kb tor NH3 equals 1.8 × 10-5, what is the pH of the solution?


Define pH.


The degree of dissociation of 0.1 M monobasic acid is 0.4%. Its dissociation constant is ______.


Calculate the pH of the buffer solution containing 0.5 mol NaF and 0.015 mol HF per litre. [pKa = 3.1427].


The mole fraction of the solute molal aqueous solution is:


Define pH.


Derive the relationship between pH and pOH.


Define pH.


Define pH.


Derive the relation pH + pOH = 14.


Derive the relation pH + pOH = 14.


Which from the following compound in aqueous medium having minimum pH?


Share
Notifications

Englishहिंदीमराठी


      Forgot password?
Use app×