JEE Main Chemistry Atomic Structure 2026 | Bohr Model, Quantum Numbers & Electronic Configuration | PrepMocker
JEE Main Chemistry · Atomic Structure

Atomic Structure: Bohr Model, Quantum Numbers & Electronic Configuration

Study atomic models, Bohr theory, quantum mechanical model, quantum numbers, electronic configuration and principles for JEE Main Chemistry.

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The central idea of this chapter

Atoms consist of nucleus and electrons in quantized energy states. This chapter connects classical and quantum models with electronic arrangement and periodic properties.

What should you understand first?

Atomic Structure is fundamental for entire Chemistry. Master Bohr model, quantum numbers and electronic configuration rules. This chapter links with periodic table and chemical bonding.

Core concepts

  • Bohr model Eₙ = −13.6Z²/n² eV
  • Quantum numbers n, l, m, s
  • De Broglie λ = h/mv
  • Heisenberg ΔxΔp ≥ h/4π
  • Electronic config Aufbau, Pauli, Hund

Useful building blocks

  • Orbit radius rₙ = 0.529n²/Z Å
  • Velocity v = 2.18×¹⁰Z/n m/s
  • Angular momentum mvr = nh/2π
  • Orbital shape l = 0,1,2,3
  • Electron capacity 2n² electrons

Atomic Structure formula sheet

Use consistent units. Apply Bohr formulas for hydrogen-like species (H, He+, Li2+) with proper atomic number Z.

Topic Formula / Relation Meaning or use
Bohr radius rn = 0.529 n2/Z Å Radius of nth orbit
Bohr energy En = −13.6 Z2/n2 eV Energy of electron in nth orbit
Electron velocity v = 2.18×¹⁰ Z/n m/s Velocity in nth orbit
Angular momentum mvr = nh/2π Quantization condition
De Broglie wavelength λ = h/mv = h/p Wave nature of electron
Heisenberg uncertainty Δx × Δp ≥ h/4π Position-momentum uncertainty
Principal quantum no n = 1, 2, 3... Shell number, size, energy
Azimuthal quantum no l = 0 to (n−1) Subshell, shape (s,p,d,f)
Magnetic quantum no m = −l to +l Orbital orientation
Spin quantum no s = +1/2 or −1/2 Electron spin direction
Number of orbitals Total orbitals in nth shell
Max electrons 2n2 electrons Maximum electrons in nth shell
Aufbau principle (n+l) rule Order of filling orbitals
Hund's rule Maximize unpaired spins Degenerate orbitals filling

How to approach Atomic Structure problems

First identify topic (Bohr, quantum numbers, configuration), then apply appropriate formula. Use quantum number rules systematically for electron arrangement.

Bohr model & dual nature

  • Energy of orbit? Eₙ = −13.6Z²/n² eV
  • Radius? rₙ = 0.529n²/Z Å
  • Transition energy? ΔE = Ef − Ei
  • De Broglie? λ = h/mv
  • Uncertainty? ΔxΔp ≥ h/4π

Quantum numbers & configuration

  • Valid quantum nos? Check rules
  • Orbital from l? 0=s,1=p,2=d,3=f
  • Filling order? (n+l) rule
  • Electronic config? 1s 2s 2p...
  • Unpaired electrons? Hund's rule

How to prepare Atomic Structure

Start with atomic models and Bohr theory, then master quantum numbers and their rules. Finish with electronic configuration and principles (Aufbau, Pauli, Hund).

What to do

  • Learn Bohr model formulas for hydrogen-like species
  • Understand de Broglie and Heisenberg concepts
  • Master all four quantum numbers and their ranges
  • Practise electronic configuration writing
  • Revise Aufbau, Pauli and Hund's rules

Common mistakes

  • Wrong sign in Bohr energy formula (negative)
  • Confusing quantum number rules and ranges
  • Wrong orbital filling order (remember (n+l) rule)
  • Forgetting exceptions (Cr, Cu, etc.)
  • Mixing up azimuthal and magnetic quantum numbers

Ready to test Atomic Structure?

Revise the formula sheet, then solve mixed JEE Main problems on Bohr model, quantum numbers and electronic configuration.

Start Mock Test

Atomic Structure FAQ

Short answers to frequently tested ideas in this chapter.

Quantum numbers describe electron's position and energy. Four quantum numbers are n (principal), l (azimuthal), m (magnetic) and s (spin).

Bohr model describes electrons in fixed circular orbits around nucleus. Energy En = −13.6Z2/n2 eV for hydrogen-like atoms.

Electronic configuration shows distribution of electrons in orbitals. It follows Aufbau principle, Pauli exclusion and Hund's rule.