1st Year Chemistry ch # 2 ( Atomic Structure) Important MCQs

šŸ“Œ Topics for Short Questions – Chapter 2 (Atomic Structure)

MCQs in board exams are mostly based on these topics:


1. Subatomic Particles

  • Which particle has the smallest mass? (Electron)

  • Which particle has a positive charge? (Proton)

  • Which particle has no charge? (Neutron)

  • Which particle is found in the nucleus? (Proton and neutron)

  • The relative mass of a proton is approximately: (1)

  • The relative mass of an electron is approximately: (1/1840)

2. Atomic and Mass Number

  • Atomic number is also called: (Proton number)

  • Mass number is also called: (Nucleon number)

  • Number of protons = (Atomic number)

  • Number of neutrons = (Mass number – Atomic number)

  • Number of electrons in a neutral atom = (Number of protons)

3. Behaviour in Electric Field

  • Protons are deflected towards: (Negative plate)

  • Electrons are deflected towards: (Positive plate)

  • Neutrons are deflected: (Not deflected at all)

4. Quantum Numbers

  • The principal quantum number is represented by: (n)

  • The azimuthal quantum number represents: (Sub-shell)

  • The magnetic quantum number represents: (Orbital orientation)

  • The spin quantum number has values: (+1/2 and –1/2)

5. Shells, Sub-shells, and Orbitals

  • The maximum number of electrons in a shell is: (2n²)

  • The maximum number of electrons in an s sub-shell is: (2)

  • The maximum number of electrons in a p sub-shell is: (6)

  • The maximum number of electrons in a d sub-shell is: (10)

  • The maximum number of electrons in an f sub-shell is: (14)

6. Orbitals and Shapes

  • How many orbitals are in an s sub-shell? (1)

  • How many orbitals are in a p sub-shell? (3)

  • How many orbitals are in a d sub-shell? (5)

  • The shape of an s orbital is: (Spherical)

  • The shape of a p orbital is: (Dumbbell)

7. Electronic Configuration Rules

  • Electrons fill the lowest energy orbitals first: (Aufbau principle)

  • No two electrons can have the same four quantum numbers: (Pauli’s exclusion principle)

  • Electrons fill degenerate orbitals singly first: (Hund’s rule)

  • Orbitals with the same energy are called: (Degenerate orbitals)

8. Electronic Configuration

  • The electronic configuration of Na is: (1s² 2s² 2p⁶ 3s¹)

  • The electronic configuration of Cl is: (1s² 2s² 2p⁶ 3s² 3p⁵)

  • The electronic configuration of Mg²⁺ is: (1s² 2s² 2p⁶)

  • The electronic configuration of O²⁻ is: (1s² 2s² 2p⁶)

9. Ionization Energy

  • Ionization energy is the energy required to remove: (An electron from a gaseous atom)

  • Ionization energy increases across a period: (True)

  • Ionization energy decreases down a group: (True)

  • Which element has the highest ionization energy? (Noble gas)

  • Which element has the lowest ionization energy? (Alkali metal)

10. Trends in Radius

  • Atomic radius decreases across a period: (True)

  • Atomic radius increases down a group: (True)

  • Ionic radius of a positive ion is: (Smaller than atomic radius)

  • Ionic radius of a negative ion is: (Larger than atomic radius)

11. Free Radicals

  • A free radical has: (One or more unpaired electrons)

  • Free radicals are: (Highly reactive)

12. Shielding Effect

  • Shielding effect is caused by: (Inner electrons)

  • Shielding effect: (Reduces the attraction between nucleus and outer electrons)

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