D-block and F-block elements are transition and inner-transition elements, respectively. These elements are crucial in NEET because they appear frequently in questions related to oxidation states, complex formation, electronic configuration, and chemical reactivity.
► Click “Download Here” next to your subject to access the free PDF.
|
STD 11 |
||
|
1 |
Some Basic Concept Of Chemistry |
|
|
2 |
Structure Of Atom |
|
|
3 |
Classification Of Elements & Periodicity In Properties |
|
|
4 |
Chemical Bonding & Molecular Structure |
|
|
5 |
Thermodynamics & Thermochemistry |
|
|
6.1 |
Equilibrium - I (Chemical Equilibrium) |
|
|
6.2 |
Equilibrium - II (Icon Equilibrium) |
|
|
7 |
Redox Reactions |
|
|
8.1 |
Organic Chemistry Nomenclature Of Organic Compounds |
|
|
8.2 |
Organic Chemistry Isomerism |
|
|
8.3 |
Organic Chemistry Purification & Characterization |
|
|
8.4 |
Organic Chemistry Reaction Mechanism |
|
|
9 |
Hydrocarbon |
|
|
10 |
P - Block Elements - I |
|
|
|
||
|
STD 12 |
||
|
1 |
Solution & Colligative Properties |
|
|
2 |
Electrochemistry |
|
|
3 |
Chemical Kinetics |
|
|
4 |
D & F - Block Elements |
|
|
5 |
Co-Ordination Chemistry |
|
|
6 |
Haloalkanes & Haloarenes |
|
|
7 |
Alcohol , Phenol & Ethers |
|
|
8.1 |
Aldehydes & Ketones |
|
|
8.2 |
Carboxylic Acids & Their Derivative |
|
|
9 |
Amines |
|
|
10 |
Biomolecules |
|
|
11 |
P - Block Elements - ll |
|
Definition: Elements with partially filled d-orbitals.
General Properties:
Variable oxidation states
Formation of colored ions and complexes
Catalytic activity
Metallic nature and high melting points
Examples: Sc, Ti, V, Cr, Mn, Fe, Co, Ni, Cu, Zn
General configuration: (n–1)d¹⁻¹⁰ ns⁰⁻²
Transition elements show incomplete d-orbitals in ground or common oxidation states.
Explains variable oxidation states and formation of colored compounds.
Oxidation States:
Increases across the period
Maximum oxidation state = group number
Complex Formation:
Form coordination compounds with ligands (e.g., [Fe(CN)₆]³⁻)
Catalytic Activity:
Many act as catalysts in industry (Fe in Haber process, V₂O₅ in Contact process)
Magnetic Properties:
Unpaired electrons cause paramagnetism
Definition: Elements with partially filled f-orbitals.
Subdivisions:
Lanthanides (4f series): Ce to Lu
Actinides (5f series): Th to Lr
General Properties:
Similar chemical behavior within the series
+3 oxidation state predominant in lanthanides
Actinides show multiple oxidation states
Lanthanides: [Xe] 4f¹⁻¹⁴ 5d⁰⁻¹ 6s²
Actinides: [Rn] 5f¹⁻¹⁴ 6d⁰⁻¹ 7s²
F-orbital filling explains similar chemical properties and lanthanide contraction
Atomic and Ionic Size:
D-block: Decrease across period, slight increase down group
F-block: Lanthanide contraction affects size and properties
Oxidation States:
D-block: Multiple, variable
F-block: Lanthanides mostly +3, actinides vary
Magnetic Properties:
Number of unpaired electrons determines paramagnetism
Complex Formation:
D-block: Strong tendency to form coordination compounds
F-block: Rarely form stable complexes
Questions often include oxidation states, electronic configuration, color, and catalytic activity.
F-block elements are frequently tested in trends, lanthanide contraction, and separation techniques.
D-block and F-block concepts form the basis for transition metal chemistry in Class 12.
Determining oxidation states and electronic configuration
Predicting magnetic properties and color of complexes
Explaining trends in melting points, density, and reactivity
Applications of transition metals and lanthanides in industry and medicine
Memorize General Trends – Oxidation states, atomic size, magnetic properties
Understand Electronic Configurations – Helps predict chemical behavior
Practice Previous Year NEET Questions – Focus on application-based problems
Learn Industrial Applications – Catalysts, alloys, and medical uses
Focus on Lanthanide Contraction and Actinide Series – Frequently asked in NEET
Mastering D-Block and F-Block Elements is essential for NEET success. These elements are highly scoring in NEET because they combine conceptual clarity, numerical problems, and real-life applications. A strong understanding ensures confidence in transition metal and inner transition chemistry.