हिंदी

In NaOH solution [OH–] is 2.87 × 10–4. Calculate the pH of the solution.

Advertisements
Advertisements

प्रश्न

In NaOH solution [OH] is 2.87 × 104. Calculate the pH of the solution.

संख्यात्मक
Advertisements

उत्तर

Given: [OH] = `2.87 xx 10^-4` M

To find: pH of the solution

Formulae: 

i. pOH = –log10[OH]

ii. pH + pOH = 14

Calculation:

From formula (i),

pOH = –log10[OH]

∴ pOH = –log10[2.87 × 10–4]

= –log102.87 – log10104

∴ –log102.87 + 4 = 4 – 0.4579

pOH = 3.5421

From formula (ii),

pH + pOH = 14

pH = 14 – pOH

= 14 – 3.5421

= 10.4579

pH of the solution is 10.4579

shaalaa.com
  क्या इस प्रश्न या उत्तर में कोई त्रुटि है?
अध्याय 3: Ionic Equilibria - Exercises [पृष्ठ ६२]

APPEARS IN

बालभारती Chemistry [English] Standard 12 Maharashtra State Board
अध्याय 3 Ionic Equilibria
Exercises | Q 3. x. | पृष्ठ ६२

संबंधित प्रश्न

The pH of a sample of vinegar is 3.76. Calculate the concentration of hydrogen ion in it.


Calculate the pH of the following solution: 

2 g of TlOH dissolved in water to give 2 litre 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.


Calculate the pH of the resultant mixtures: 10 mL of 0.1M H2SO4 + 10 mL of 0.1M KOH


Choose the most correct answer :

Blood in the human body is highly buffered at a pH of ________.


Choose the most correct answer :

For pH > 7 the hydronium ion concentration would be _________.


Calculate the pOH of 10-8 M of HCl.


Derive the equation pH + pOH = 14.


The pH of 0.001 M NaOH(aq) solution will be:


The CORRECT match between transition metal ion and its colour in aqueous solution.


Among the following, the CORRECT increasing order of acidity:


pH of a solution is 12. The number H+ ions present in 1 cm3 of this solution is ____________.


What is the pH of 0.01 M solution of ammonium hydroxide which is 10% dissociated?


The least basic hydroxide from the following is:


pH of a saturated solution of Ca(OH)2 is 9. The Solubility product (Ksp) of Ca(OH)2


The aqueous solutions of sodium formate, anilinium chloride and potassium cyanide are respectively.


Equal volumes of three acid solutions of pH 1, 2 and 3 are mixed in a vessel. What will be the H+ ion concentration in the mixture?


The pH of 10−5 M KOH solution will be ____________.


What is the pH of a 2.6 × 10-8 MH+ ion solution? (log 2.6 = 0.4150)


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.


Calculate the pH of a buffer solution containing 0.1 M CH3COOH and 0.05 M CH3COONa. Dissociation constant of CH3COOH is 1.8 × 10-5 at 25°C.


The mole fraction of the solute molal aqueous solution is:


Define pOH.


Define pH.


Derive relationship between pH and pOH.


Define pH.


Define pH.


Define pH.


Define pOH.


Share
Notifications

Englishहिंदीमराठी


      Forgot password?
Use app×