CBSE Class 12 Chemistry • Unit 1

Solutions

Free NCERT-aligned study resource for the 2026–27 academic session.

CBSE weightage: 7 marks. This unit is part of the official 70-mark Chemistry theory course for 2026–27. citeturn0search11

1. What You Need to Learn

Types of solutions; concentration terms; solubility; vapour pressure; ideal and non-ideal solutions; colligative properties; determination of molar mass; abnormal molar masses.

2. Core Concepts & Formulae

Molarity (M) = moles of solute / volume of solution in L. Molality (m) = moles of solute / mass of solvent in kg. Mole fraction is moles of a component divided by total moles. Raoult’s law relates vapour pressure to mole fraction for ideal solutions. Elevation in boiling point: ΔTb = Kb m; depression in freezing point: ΔTf = Kf m; osmotic pressure: π = CRT.

3. Common Mistakes

Do not confuse molarity with molality; temperature changes volume and therefore molarity, while molality is temperature-independent. For colligative-property questions, identify whether the solute associates or dissociates and use the van’t Hoff factor i when required.

4. Exam-Focused Practice

  1. A solution contains 0.5 mol solute in 2 kg solvent.
  2. Find its molality.
  3. A 0.10 M solution is diluted to twice its volume; find the new molarity.
  4. Explain why molality is preferred for temperature-based calculations.

5. Quick Revision Checklist

  • Can you define the key terms without looking at the book?
  • Can you explain the main trend/reaction/mechanism with a reason?
  • Can you solve a numerical or predict a product independently?
  • Can you answer an application or competency-based question?
NCERT/CBSE note: Use the latest prescribed NCERT textbook and official CBSE curriculum as the final authority for examination preparation.

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