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NEET CHEMISTRYEquilibriumMedium

Question

The compound with the highest pH among the following is:

A

CH3COOK\text{CH}_3\text{COOK}

B

Na2CO3\text{Na}_2\text{CO}_3

C

NH4Cl\text{NH}_4\text{Cl}

D

NaNO3\text{NaNO}_3

Step-by-Step Solution

The pH of a salt solution depends on the relative strengths of the acid and base from which it is formed:

  1. NaNO3\text{NaNO}_3 is a salt of a strong acid (HNO3\text{HNO}_3) and a strong base (NaOH\text{NaOH}). Its aqueous solution does not undergo hydrolysis and remains neutral with pH=7\text{pH} = 7 .
  2. NH4Cl\text{NH}_4\text{Cl} is a salt of a strong acid (HCl\text{HCl}) and a weak base (NH4OH\text{NH}_4\text{OH}). It undergoes cationic hydrolysis to form an acidic solution with pH<7\text{pH} < 7 .
  3. CH3COOK\text{CH}_3\text{COOK} and Na2CO3\text{Na}_2\text{CO}_3 are salts of weak acids (CH3COOH\text{CH}_3\text{COOH} and H2CO3\text{H}_2\text{CO}_3, respectively) and strong bases (KOH\text{KOH} and NaOH\text{NaOH}). Both undergo anionic hydrolysis to form basic solutions with pH>7\text{pH} > 7 . However, carbonic acid (H2CO3\text{H}_2\text{CO}_3) is a weaker acid than acetic acid (CH3COOH\text{CH}_3\text{COOH}). Because it is formed from a weaker acid, the carbonate ion (CO32\text{CO}_3^{2-}) is a stronger conjugate base than the acetate ion (CH3COO\text{CH}_3\text{COO}^-). Therefore, CO32\text{CO}_3^{2-} undergoes hydrolysis to a greater extent, producing a higher concentration of OH\text{OH}^- ions. As a result, the aqueous solution of Na2CO3\text{Na}_2\text{CO}_3 is more basic and has the highest pH among the given options.

Exam Context & Concepts Covered

This question aligns with the NEET CHEMISTRY syllabus, specifically targeting concepts from Equilibrium. Mastering this topic is crucial for scoring well in the upcoming medical entrance examinations. Solving conceptually related problems will help you understand the nuances of these concepts and improve your problem-solving speed.

CHEMISTRYEquilibriumcompoundhighestfollowing

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Consider the following reaction: $\text{A}_2(g) + \text{B}_2(g) \rightleftharpoons 2\text{AB}(g)$. At equilibrium, the concentrations of $[\text{A}_2] = 3.0 \times 10^{–3} \text{ M}$; $[\text{B}_2] = 4.2 \times 10^{–3} \text{ M}$ and $[\text{AB}] = 2.8 \times 10^{–3} \text{ M}$. The value of $K_c$ for the above-given reaction in a sealed container at $527^\circ\text{C}$ is:

A.3.9
B.0.6
C.4.5
D.2
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Amongst the given options, which of the following molecules/ions acts as a Lewis acid?

A.$\text{OH}^-$
B.$\text{NH}_3$
C.$\text{H}_2\text{O}$
D.$\text{BF}_3$
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Boric acid is an acid because its molecule

A.contains replaceable H⁺ ion
B.gives up a proton
C.accepts OH⁻ from water releasing proton
D.combines with proton from water molecule
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The following solutions were prepared by mixing different volumes of NaOH and HCl of different concentrations. pH of which one of them will be equal to 1?

A.$60 \text{ mL } \frac{M}{10} \text{ HCl } + 40 \text{ mL } \frac{M}{10} \text{ NaOH}$
B.$55 \text{ mL } \frac{M}{10} \text{ HCl } + 45 \text{ mL } \frac{M}{10} \text{ NaOH}$
C.$75 \text{ mL } \frac{M}{5} \text{ HCl } + 25 \text{ mL } \frac{M}{5} \text{ NaOH}$
D.$100 \text{ mL } \frac{M}{10} \text{ HCl } + 100 \text{ mL } \frac{M}{10} \text{ NaOH}$
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The tendency of $BF_3$, $BCl_3$ and $BBr_3$ to behave as Lewis acid decreases in the sequence:

A.$BCl_3 > BF_3 > BBr_3$
B.$BBr_3 > BCl_3 > BF_3$
C.$BBr_3 > BF_3 > BCl_3$
D.$BF_3 > BCl_3 > BBr_3$
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A compound $\text{BA}_2$ has $K_{sp} = 4 \times 10^{-12}$. Solubility of this compound will be:

A.$10^{-3} \text{ mol/L}$
B.$10^{-4} \text{ mol/L}$
C.$10^{-5} \text{ mol/L}$
D.$10^{-6} \text{ mol/L}$
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What is the molarity of the saturated solution if the solubility product for a salt of type AB is $4 \times 10^{-8}$?

A.$2 \times 10^{-4} \text{ mol/L}$
B.$16 \times 10^{-16} \text{ mol/L}$
C.$2 \times 10^{-16} \text{ mol/L}$
D.$4 \times 10^{-4} \text{ mol/L}$
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In qualitative analysis, the metals of Group I can be separated from other ions by precipitating them as chloride salts. A solution initially contains $\text{Ag}^+$ and $\text{Pb}^{2+}$ at a concentration of $0.10 \text{ M}$. Aqueous $\text{HCl}$ is added to this solution until the $\text{Cl}^-$ concentration is $0.10 \text{ M}$. What will the concentration of $\text{Ag}^+$ and $\text{Pb}^{2+}$ at equilibrium? ($K_{sp}$ for $\text{AgCl} = 1.8 \times 10^{-10}$, $K_{sp}$ for $\text{PbCl}_2 = 1.7 \times 10^{-5}$)

A.$[\text{Ag}^+] = 1.8 \times 10^{-11} \text{ M}; [\text{Pb}^{2+}] = 1.7 \times 10^{-4} \text{ M}$
B.$[\text{Ag}^+] = 1.8 \times 10^{-7} \text{ M}; [\text{Pb}^{2+}] = 1.7 \times 10^{-6} \text{ M}$
C.$[\text{Ag}^+] = 1.8 \times 10^{-11} \text{ M}; [\text{Pb}^{2+}] = 8.5 \times 10^{-5} \text{ M}$
D.$[\text{Ag}^+] = 1.8 \times 10^{-9} \text{ M}; [\text{Pb}^{2+}] = 1.7 \times 10^{-3} \text{ M}$
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