Some Basic Concepts of Chemistry
MCQsLimiting Reagent and Excess Reagent
Laws of Chemical Combination
Daltons Atomic Theory
Physical and Chemical Changes
Precision, Accuracy & Significant Figures
MOLE CONCEPT
1. What is a Mole?
1 mole = 6.022 × 10²³ particles
This number is called Avogadro's Number (Nₐ)
Nₐ = 6.02214076 × 10²³ mol⁻¹ (exact value since 2019)
This number is called Avogadro's Number (Nₐ)
Nₐ = 6.02214076 × 10²³ mol⁻¹ (exact value since 2019)
Just like:
- 1 dozen = 12 items
- 1 pair = 2 items
- 1 mole = 6.022 × 10²³ items (atoms, molecules, ions, electrons, etc.)
Molar Mass (M)
The mass of 1 mole of a substance (in grams) = numerical value of relative atomic/molecular mass (Ar or Mr).
Molar mass of a substance = Ar or Mr in g/mol
| Substance | Formula | Molar Mass |
|---|---|---|
| Carbon | C | 12.01 g/mol |
| Oxygen gas | O₂ | 32.00 g/mol |
| Water | H₂O | 18.02 g/mol |
| Sodium chloride | NaCl | 58.44 g/mol |
| Glucose | C₆H₁₂O₆ | 180.16 g/mol |
2. Core Mole Calculations
Number of moles (n)
n = Mass (g)⁄Molar Mass (g/mol) → n = m / M
n = Number of particles⁄6.022×10²³ → n = N / Nₐ
n = Volume of gas (dm³)⁄24 dm³/mol (at RTP) → n = V / 24
n = Concentration (mol/dm³) × Volume (dm³) → n = C × V
n = Pressure x Volume/Gas Constant x Temperature → PV/RT
n = Mass (g)⁄Molar Mass (g/mol) → n = m / M
n = Number of particles⁄6.022×10²³ → n = N / Nₐ
n = Volume of gas (dm³)⁄24 dm³/mol (at RTP) → n = V / 24
n = Concentration (mol/dm³) × Volume (dm³) → n = C × V
n = Pressure x Volume/Gas Constant x Temperature → PV/RT
Summary Table
| Quantity | Symbol | Unit | Formula |
|---|---|---|---|
| Amount of substance | n | mol | — |
| Mass | m | g | m = n × M |
| Number of particles | N | — | N = n × 6.022×10²³ |
| Volume of gas (RTP) | V | dm³ or L | V = n × 24 |
| Concentration | C | mol/dm³ | C = n / V(dm³) |
3. Moles and Gases
RTP (Room Temperature & Pressure): 25°C (298 K) and 1 atm
At RTP: 1 mole of any gas occupies 24 dm³ (24 liters)
STP (Standard Temperature & Pressure): 0°C (273 K) and 1 atm
At STP: 1 mole occupies 22.7 dm³ (older syllabus) or 22.4 dm³ (most boards now use 24 dm³)
Ideal Gas Equation:
PV = nRT
R = 8.314 J mol⁻¹ K⁻¹ (or 0.0821 L atm mol⁻¹ K⁻¹)
4. Moles in Solutions
Concentration (molarity) = moles of solute⁄volume of solution (dm³)
C = n / V (V in dm³ or liters)
C = n / V (V in dm³ or liters)
Conversions:
- 1 dm³ = 1000 cm³ = 1 liter
- 500 cm³ = 0.5 dm³
- 25.0 cm³ = 0.025 dm³
5. Stoichiometry – The Heart of Mole Calculations
Mole ratios from balanced equations enable mass-mass, mass-volume, or mole-mole calculations in reactions.
For instance, in 2H₂ + O₂ → 2H₂O, 2 moles H₂ react with 1 mole O₂ to produce 2 moles H₂O
Steps for any stoichiometry problem:
- Write the balanced equation
- Convert given data → moles
- Use mole ratio from equation
- Convert moles → required unit (mass, volume, particles, etc.)
Example: How many grams of oxygen are needed to completely burn 24 g of carbon?
C + O₂ → CO₂
Moles of C = 24 / 12 = 2 mol
Mole ratio C:O₂ = 1:1 → 2 mol O₂ needed
Mass of O₂ = 2 × 32 = 64 g
C + O₂ → CO₂
Moles of C = 24 / 12 = 2 mol
Mole ratio C:O₂ = 1:1 → 2 mol O₂ needed
Mass of O₂ = 2 × 32 = 64 g
6. Fully Worked Examples
Q1. Calculate the number of molecules in 9.0 g of water.
Molar mass H₂O = 18 g/mol
n = 9.0 / 18 = 0.50 mol
Number of molecules = 0.50 × 6.022×10²³ = 3.01 × 10²³ molecules
Molar mass H₂O = 18 g/mol
n = 9.0 / 18 = 0.50 mol
Number of molecules = 0.50 × 6.022×10²³ = 3.01 × 10²³ molecules
Q2. What volume will 0.80 mol of CO₂ occupy at RTP?
V = n × 24 = 0.80 × 24 = 19.2 dm³
V = n × 24 = 0.80 × 24 = 19.2 dm³
Q3. 25.0 cm³ of 0.200 mol/dm³ NaOH neutralizes how many grams of HCl?
HCl + NaOH → NaCl + H₂O
Moles NaOH = 0.200 × (25/1000) = 0.005 mol
Mole ratio 1:1 → 0.005 mol HCl
Mass HCl = 0.005 × 36.5 = 0.1825 g
HCl + NaOH → NaCl + H₂O
Moles NaOH = 0.200 × (25/1000) = 0.005 mol
Mole ratio 1:1 → 0.005 mol HCl
Mass HCl = 0.005 × 36.5 = 0.1825 g
Q4. Calculate the empirical formula of a compound containing 40% C, 6.67% H, 53.33% O.
Assume 100 g → C:40g, H:6.67g, O:53.33g
Moles: C=40/12=3.33, H=6.67/1=6.67, O=53.33/16=3.33
Divide by smallest: C:1, H:2, O:1
Empirical formula = CH₂O
Assume 100 g → C:40g, H:6.67g, O:53.33g
Moles: C=40/12=3.33, H=6.67/1=6.67, O=53.33/16=3.33
Divide by smallest: C:1, H:2, O:1
Empirical formula = CH₂O
Q5. 20 cm³ of a gas weighs 0.90 g at RTP. Find its molecular mass.
V = 0.020 dm³ → n = 0.020 / 24 = 0.000833 mol
M = mass/n = 0.90 / 0.000833 ≈ 108 g/mol
V = 0.020 dm³ → n = 0.020 / 24 = 0.000833 mol
M = mass/n = 0.90 / 0.000833 ≈ 108 g/mol
7. Previous Year Questions & Exam-Specific Tricks
NEET 2024 9.0 g water contains how many molecules?
→ 9/18 = 0.5 mol → 0.5 × 6.022×10²³ = 3.011 × 10²³
→ 9/18 = 0.5 mol → 0.5 × 6.022×10²³ = 3.011 × 10²³
JEE Main 2023 Volume of 0.4 mol CO₂ at RTP?
→ 0.4 × 24 = 9.6 L
→ 0.4 × 24 = 9.6 L
JEE Adv 2022 A gas occupies 5.6 L at 1 atm and 273 K. Find molecules.
→ 5.6/22.4 = 0.25 mol → 0.25 × 6.022×10²³ = 1.5055 × 10²³
→ 5.6/22.4 = 0.25 mol → 0.25 × 6.022×10²³ = 1.5055 × 10²³
CSIR-NET Empirical formula from combustion: 0.1 mol CO₂ and 0.2 mol H₂O from 0.1 mol compound → EF = CH₂O
Quick Revision Checklist (Before Exam)
- Avogadro number: 6.022 × 10²³
- Molar volume RTP: 24 L
- 1 dm³ = 1 L = 1000 cm³
- Molarity × volume(in L) = moles
- Limiting reagent gives least product
- % yield = (actual/theoretical) × 100