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Ionic Equilibrium & Buffers NEET Practice MCQs

Practice ionic equilibrium and buffers MCQs for NEET with detailed explanations, key formula summaries and chapter revision exercises.

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Ionic Equilibrium and Buffers Revision Guide for NEET Chemistry

Ionic Equilibrium and Buffers is part of NEET Chemistry preparation. A strong revision plan should combine concept review with exam-style questions so that definitions, relationships, calculations and exceptions are recalled accurately.

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Important Topics

  • Core definitions and principles
  • Important equations or relationships
  • Common applications and examples
  • Frequently confused concepts
  • Exam-style multiple-choice questions
  • Error review and targeted revision

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What to practise in Ionic Equilibrium and Buffers

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Top 20 Ionic Equilibrium and Buffers MCQs with Answers

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NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

1. Which principle is essential when solving a quantitative problem in Ionic Equilibrium and Buffers?

  • A. Conservation of mass and charge where applicable
  • B. Ignoring units
  • C. Assuming all coefficients are unity
  • D. Ignoring limiting conditions
Answer: A
Explanation: Mass and charge conservation are fundamental.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

2. At equilibrium in a reversible system related to Ionic Equilibrium and Buffers, which statement is correct?

  • A. All molecular motion stops
  • B. Reactant and product concentrations must be equal
  • C. The catalyst is consumed
  • D. Forward and reverse rates are equal
Answer: D
Explanation: Dynamic equilibrium has equal forward and reverse rates.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

3. For a spontaneous process at constant T and P in a Ionic Equilibrium and Buffers context, ΔG is:

  • A. Always zero
  • B. Always equal to ΔH
  • C. Negative
  • D. Positive
Answer: C
Explanation: Spontaneity at constant T,P requires ΔG<0.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

4. Which statement about a catalyst in Ionic Equilibrium and Buffers is correct?

  • A. It is always consumed
  • B. It lowers the activation barrier without changing K at fixed T
  • C. It changes ΔG°
  • D. It changes reaction enthalpy
Answer: B
Explanation: Catalysts affect kinetics, not equilibrium thermodynamics.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

5. Oxidation in a redox step relevant to Ionic Equilibrium and Buffers means:

  • A. Loss of electrons
  • B. Gain of electrons
  • C. No oxidation-number change
  • D. Only gain of hydrogen
Answer: A
Explanation: Oxidation is electron loss.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

6. Reduction in a redox step relevant to Ionic Equilibrium and Buffers means:

  • A. Loss of electrons
  • B. Increase in oxidation number
  • C. Only loss of hydrogen
  • D. Gain of electrons
Answer: D
Explanation: Reduction is electron gain.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

7. A Lewis acid encountered in Ionic Equilibrium and Buffers is an:

  • A. Proton acceptor only
  • B. Anion only
  • C. Electron-pair acceptor
  • D. Electron-pair donor
Answer: C
Explanation: Lewis acids accept electron pairs.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

8. A Lewis base encountered in Ionic Equilibrium and Buffers is an:

  • A. Oxidising agent only
  • B. Electron-pair donor
  • C. Electron-pair acceptor
  • D. Cation only
Answer: B
Explanation: Lewis bases donate electron pairs.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

9. Which is a state function useful in Ionic Equilibrium and Buffers?

  • A. Enthalpy
  • B. Heat
  • C. Work
  • D. Path length
Answer: A
Explanation: Enthalpy is path independent.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

10. The relation between standard Gibbs energy and equilibrium constant is:

  • A. ΔG°=RT lnK
  • B. ΔG°=-KRT
  • C. ΔG°=RT/K
  • D. ΔG°=-RT lnK
Answer: D
Explanation: The standard thermodynamic relation is ΔG°=-RT lnK.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

11. For a first-order kinetic process in Ionic Equilibrium and Buffers, half-life equals:

  • A. 1/(k[A]0)
  • B. [A]0/(2k)
  • C. 0.693/k
  • D. k/0.693
Answer: C
Explanation: First-order t1/2=0.693/k.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

12. The Arrhenius equation is:

  • A. k=A/RT
  • B. k=Ae^(-Ea/RT)
  • C. k=Ae^(Ea/RT)
  • D. k=EaRT
Answer: B
Explanation: Arrhenius equation relates k to activation energy and temperature.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

13. For an ideal dilute solution relevant to Ionic Equilibrium and Buffers, molarity is:

  • A. Moles solute per litre solution
  • B. Moles solute per kg solvent
  • C. Grams solute per mole solvent
  • D. Moles solvent per litre
Answer: A
Explanation: M=n/V(L).

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

14. For a weak acid, a larger Ka generally indicates:

  • A. A weaker acid
  • B. No ionisation
  • C. A stronger conjugate acid
  • D. A stronger acid
Answer: D
Explanation: Larger Ka means greater ionisation.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

15. At 25°C, pH+pOH for aqueous solution is:

  • A. 1
  • B. 0
  • C. 14
  • D. 7
Answer: C
Explanation: pH+pOH=pKw=14 at 25°C.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

16. For an electrochemical cell, oxidation occurs at:

  • A. Electrolyte only
  • B. Anode
  • C. Cathode
  • D. Salt bridge
Answer: B
Explanation: Oxidation occurs at the anode.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

17. For an electrochemical cell, reduction occurs at:

  • A. Cathode
  • B. Anode
  • C. Salt bridge
  • D. Wire
Answer: A
Explanation: Reduction occurs at the cathode.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

18. A positive E°cell implies:

  • A. ΔG°>0
  • B. K<1 necessarily
  • C. No spontaneous reaction
  • D. ΔG°<0
Answer: D
Explanation: ΔG°=-nFE°.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

19. Higher bond order generally corresponds to:

  • A. Longer stronger bond
  • B. No bond-length effect
  • C. Shorter stronger bond
  • D. Longer weaker bond
Answer: C
Explanation: Higher bond order strengthens and shortens bonds.

NEET Chemistry · Ionic Equilibrium and Buffers · Very Very Hard

20. A nucleophile in an organic reaction related to Ionic Equilibrium and Buffers is:

  • A. Always a radical
  • B. Electron-pair donor
  • C. Electron-pair acceptor
  • D. Always positively charged
Answer: B
Explanation: Nucleophiles donate electron pairs.

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Ionic Equilibrium and Buffers Practice Tests

Ionic Equilibrium and Buffers Frequently Asked Questions

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