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Earn 100

Calculate the pH of a solution made by mixing 150 cm3 of 0.10 MCH3 COONa and 250 cm3 of 0.10 M CH3COOH·[Ka of CH3COOH=1.8×10-5

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Important Questions on Equilibrium

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A buffer solution is prepared by mixing 0.050 moles of a weak acid HA and 0.20 moles of NaA in sufficient amount of water to give 500mL of solution Ka for HA is 4.5×10-4 The pH of this solution is :
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A buffer solution with pH 9 is to be prepared by mixing NH4Cl and NH4OH. Calculate the number of moles of NH4Cl that should be added to one litre of 1.0 M NH4OH. Kb=1.8×10-5
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Kb of aniline is 10-10. A solution containing equal moles of aniline and anilinium chloride will be:
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The ionization constant of a certain weak acid is 10-4. What should be the [salt] to acid ratio if we have to prepare a buffer with pH=5 using this acid and one of the salts?
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In a mixture of acetic acid and sodium acetate the ratio of concentration of the salt to the acid is increased ten times. Then, the pH of the solution
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Which indicator will be suitable for the titration of acetic acid vs NaOH?
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The pH range of methyl red indicator is :
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What is the pH of the solution at half neutralization in the titration of 0.1M CH3COOH and 0.1M KOHKa=1.8×10-5