Home
Class 12
CHEMISTRY
Find the pH at equivalence points when a...

Find the `pH` at equivalence points when a soluiton of `0.1M` acetic acid is titrated with a solution of `0.3M NaOH K_(a)` for acetic acid `=7.5xx10^(-6)`

Text Solution

AI Generated Solution

To find the pH at the equivalence point when titrating a solution of 0.1 M acetic acid with 0.3 M NaOH, we will follow these steps: ### Step 1: Determine the moles of acetic acid The number of moles of acetic acid can be calculated using the formula: \[ \text{Moles of acetic acid} = \text{Molarity} \times \text{Volume} \] Assuming the volume of acetic acid solution is \( V_1 \) liters: ...
Promotional Banner

Topper's Solved these Questions

  • IONIC EQUILIBRIUM

    RESONANCE ENGLISH|Exercise Solved Example Miscellaneous solved problems|13 Videos
  • IONIC EQUILIBRIUM

    RESONANCE ENGLISH|Exercise Board Level Exercise|27 Videos
  • HYDROCARBON

    RESONANCE ENGLISH|Exercise ORGANIC CHEMISTRY(Hydrocarbon)|50 Videos
  • IUPAC NOMENCLATURE & STRUCTURAL ISOMERISM

    RESONANCE ENGLISH|Exercise Advanced Level Problems Part-5|2 Videos

Similar Questions

Explore conceptually related problems

Calculate the pH at the equivalence point when a solution of 0.1 M acetic acid is titrated with a solution of 0.1 M NaOH. K_(a) for acid =1.9xx10^(-5) .

Calculate the pH at equilibrium point when a solution of 10^(-6) M CH_(3)COOH is titrated with a solution of 10^(-6)M NaOH. K_(a) for acid 2 xx 10^(-5) (pK_(a) = 4.7) (Answer given in whole number).

The degree of dissociation of acetic acid in a 0.1 M solution is 1.0xx10^(-2) . The pK_(a) of acetic acid value.

Calculate the percentage ionization of 0.01 M acetic acid in 0.1 M HCI. K_a of acetic acid is 1.8 xx 10^(-5)

What will be the pH at the equivalence point during the titration of a 100 mL 0.2 M solution of CH_(3)CCOONa with 0.2 M solution of HCl ? K_(a)=2xx10^(-5)

What is the pH of the solution when 0.20 mol of HCI is added to 1L of a solution containing a. 1M each of acetic acid and acetate ion. b. 0.1M each of aceta acid and acetate ion. Assume the total volume is 1L. K_(a) for acetic acid is 1.8 xx 10^(-5) .

Calculate the pH of 0.05M sodium acetate solution, if the pK_(a) of acetic acid is 4.74 .

When a buffer solution of sodium acetate and acetic acid is diluted with water, then pH

Calculate the pH at the equivalence point during the titration of 0.1M, 25 mL CH_(3)COOH with 0.05M NaOH solution. [K_(a)(CH_(3)COOH) = 1.8 xx 10^(-5)]

Calculate the pH at the equivalence point during the titration of 0.1M, 25 mL CH_(3)COOH with 0.05M NaOH solution. [K_(a)(CH_(3)COOH) = 1.8 xx 10^(-5)]