Q.Why transition metals exhibit catalytic properties? Explain.
🔒You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.
🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Catalytic Properties
Catalytic Properties of Transition Metals
Imagine a busy highway with a steep mountain pass. Trucks struggle to climb, traffic slows to a crawl. Now imagine a tunnel is drilled straight through the mountain — the same trucks now zip through effortlessly. The tunnel didn't change the trucks or their destination, but it made the journey vastly easier. That is exactly what a catalyst does for a chemical reaction: it provides an alternative, lower-energy pathway.
Transition metals are nature's master tunnel-builders. Their secret lies in two features you already know: variable oxidation states and partly filled d-orbitals. These allow them to do something no other elements can do as well — they can hold onto reactant molecules, rearrange them, and then let go of the product, all while remaining unchanged themselves at the end.
The Intuition: A Molecular Handshake
Think of a reactant molecule as a person carrying a heavy box. To break the box open (the reaction), you need to grab it firmly, twist it, and pull. A transition metal surface is like a pair of hands with many fingers — its d-orbitals can reach out and form temporary bonds with the reactant. This is called adsorption.
Once adsorbed, the reactant's own internal bonds get stretched and weakened. The metal's variable oxidation state means it can donate or accept electrons as needed, like adjusting your grip strength. The reaction that was impossible at room temperature now happens easily because the metal has held the molecule in just the right position and weakened its bonds.
After the reaction, the product molecule leaves the metal surface, and the metal is ready to shake hands with the next reactant. It is never consumed — it just keeps facilitating.
The Precise Statement
Catalytic property: Transition metals and their compounds act as catalysts by providing a surface where reactants adsorb via d-orbital interactions. The metal's ability to exist in multiple oxidation states allows it to temporarily transfer electrons to or from the reactants, forming reactive intermediates. This lowers the activation energy of the reaction without being consumed.
The key steps are:
- Adsorption: Reactant molecules stick to the metal surface through weak bonds formed by the metal's partially filled d-orbitals.
- Weakening of bonds: The metal's electrons interact with the reactant's bonds, stretching and weakening them.
- Reaction: The weakened bonds break more easily; new bonds form. The metal may temporarily change its oxidation state as it donates or accepts electrons.
- Desorption: The product leaves the surface, regenerating the metal in its original state.
Why Transition Metals Excel
No other class of elements combines these two abilities so well:
- Variable oxidation states (e.g., Fe²⁺/Fe³⁺, Mn²⁺/Mn⁴⁺/Mn⁷⁺) allow electron transfer to and from reactants.
- Partly filled d-orbitals provide the right energy levels to form temporary bonds with a wide variety of molecules.
This is why iron is used in the Haber process (making ammonia from nitrogen and hydrogen), nickel in hydrogenation of oils, and platinum in catalytic converters. Each metal is chosen because its d-orbital energy matches the specific reactant molecules.
A Concrete Example: Haber Process …
Transition metals owe their catalytic activity mainly to two structural features: their readily interconvertible oxidation states and the vacant d orbitals/large surface area available to bind reactant molecules. …
Variable oxidation states plus the availability of d-orbitals let transition metals form unstable intermediates with reactants and provide a lower-activation-energy alternative reaction pathway - the essence of catalysis.
- Variable oxidation states: transition metals can readily interconvert between different oxidation states, allowing them to form unstable intermediate compounds with reactant molecules. These intermediates then decompose to give the products, regenerating the catalyst, effectively providing an alternative reaction pathway with lower activation energy than the uncatalysed reaction. (Example: V2O5 catalyses SO2 -> SO3 in the Contact Process by cycling between V5+ and V4+.) …
- CBSE 2026Set ANNUAL1 markMCQQ.The catalytic activity of transition metal's and their compounds is due to(a) their ability to adopt variable oxidation states(b) their chemical activity(c) their magnetic behaviour(d) their unfilled d-orbital
›Reveal solutionSolution
Transition metals catalyse reactions chiefly because their multiple accessible oxidation states let them form transient intermediate species with reactants, providing an alternative, lower-energy pathway for the reaction.
Example — Contact process: V2O5 catalyses 2SO2+O2→2SO3 by cycling between V5+ and V4+: V2O5 oxidises SO2 to SO3 while being reduced to V2O4, which is then re-oxidised back to V2O5 by O2 — the catalyst is regenerated at the end, but the reaction proceeds via a lower-energy route through these oxidation-state changes. Similarly, iron catalyses the Haber process by forming and breaking surface intermediates.
Why the other options are wrong:
- (b) Their chemical activity: far too vague/non-specific to be the actual mechanistic reason.
- (c) Their magnetic behaviour: magnetism (arising from unpaired d-electrons) is unrelated to catalytic ability. …
- CBSE 2025Set X11 markMCQQ.Match the following given in List - I with List - II : List - Ii) V2O5ii) TiCl4 with Al(CH3)3iii) PdCl2iv) Nickel complexes List - II A) Oxidation of ethyne to ethanal B) Polymerisation of alkynes C) Oxidation of SO2 in the manufacture of sulphuric acid D) Manufacture of polyethylene Choose the correct option :(a) i – C, ii – D, iii – A, iv – B(b) i – A, ii – B, iii – C, iv – D(c) i – A, ii – C, iii – B, iv – D(d) i – C, ii – A, iii – D, iv – B
›Reveal solutionSolution
Each transition-metal system is a known industrial catalyst: V2O5→C, TiCl4/Al(CH3)3→D, PdCl2→A, Ni complexes→B, giving option (a).
Matching each catalyst to its industrial role:
- i) V2O5 → C (Oxidation of SO2 in manufacture of sulphuric acid). Vanadium(V) oxide is the catalyst in the Contact process: 2SO2+O2V2O52SO3.
- ii) TiCl4 with Al(CH3)3 → D (Manufacture of polyethylene). This is the Ziegler–Natta catalyst used to polymerise ethene to polythene. …
- CBSE 2025Set ANNUAL1 markMCQQ.Which property of transition metals enables them to behave as catalysts?(a) High melting point(b) High ionisation enthalpy(c) Alloy formation(d) Variable oxidation state
›Reveal solutionSolution
Transition metals act as catalysts mainly because they can adopt multiple oxidation states, allowing them to form intermediate species with reactants and provide an alternative, lower-activation-energy reaction path.
Catalytic activity of transition metals arises from:
- Their ability to show variable oxidation states, so they can form unstable intermediate compounds with reactants, and revert to their original state after the reaction.
- Their large surface area (in finely divided/heterogeneous form) providing adsorption sites for reactants. …
- CBSE 2024Set ANNUAL1 markMCQQ.Which of the following types of metals are the most efficient catalysts ?(a) Alkali metals(b) Alkaline earth metals(c) Transition metals(d) Radioactive metals
›Reveal solutionSolution
Transition metals and their compounds are the most efficient catalysts because of their variable oxidation states, ability to form complexes/intermediates, and large surface area with unfilled d-orbitals for adsorption.
Transition metals (e.g. Fe, Ni, Pt, Pd, V2O5, TiCl4) are widely used as catalysts (e.g. Fe in the Haber process, Ni in hydrogenation of oils, V2O5 in the Contact process, TiCl4 with Al(C2H5)3 as the Ziegler-Natta catalyst) because:
- They show variable oxidation states, allowing them to form unstable intermediate compounds with reactants and provide a new, lower-activation-energy pathway for the reaction, then revert to the original state. …
- CBSE 2020Set 56/3/11 markQ.Why do transition metals and their compounds show catalytic activity?
›Reveal solutionSolution
Transition metals and their compounds act as catalysts because they can adopt multiple oxidation states, form unstable intermediate complexes, and provide a large surface area for reactions — this allows them to lower activation energy and speed up reactions without being consumed.
The Core Idea: Why Transition Metals Are Special
Catalysis is about providing an alternative reaction pathway with lower activation energy. Transition metals are uniquely suited for this because of two fundamental properties: variable oxidation states and ability to form coordination complexes. These arise from their partially filled d-orbitals, which can accept or donate electrons with remarkable flexibility.
Think of a catalyst as a chemical matchmaker — it brings reactants together, holds them in just the right orientation, and then lets go. Transition metals do this better than any other class of elements because their d-electrons are neither too tightly bound (like in inner transition metals) nor too loosely held (like in alkali metals). They are in the Goldilocks zone of chemical bonding.
The Mechanism: Step by Step
- Variable oxidation states enable electron shuttling. Transition metals like Fe, Co, Ni, Mn, and Cr can exist in multiple oxidation states (e.g., Fe²⁺/Fe³⁺, Mn²⁺/Mn⁴⁺/Mn⁷⁺). This allows them to accept electrons from one reactant (getting reduced) and donate them to another (getting reoxidized). The net effect is that the metal facilitates electron transfer without being permanently changed. For example, in the Haber process for ammonia synthesis, iron acts as a catalyst:
N2+3H2Fe2NH3
Iron adsorbs N₂ and H₂ molecules, weakens their bonds by donating d-electrons into antibonding orbitals, and then releases NH₃.
- Formation of unstable intermediate complexes. Transition metals have vacant d-orbitals that can accept lone pairs from reactants, forming coordinate bonds. This creates a reaction intermediate — a temporary complex that is more reactive than the original reactants. Because the intermediate is unstable, it readily decomposes to give the product and regenerate the catalyst. A classic example is the contact process for sulfuric acid:
2SO2+O2V2O52SO3
Vanadium pentoxide forms an intermediate vanadyl sulfate complex, which then breaks down to release SO₃.
-
Large surface area for adsorption.
Many transition metal catalysts are used as finely divided solids or deposited on inert supports. This maximizes the surface area where reactants can adsorb. Adsorption itself is a key step — it brings reactant molecules close together and weakens their internal bonds.
In hydrogenation of oils, finely divided nickel provides a surface where H₂ and unsaturated fats meet, allowing addition across double bonds.
-
d-orbital participation in bond formation.
The partially filled d-orbitals can overlap with orbitals of reactant molecules, forming temporary bonds that lower the activation energy. This is especially important in organometallic catalysis (e.g., Wilkinson's catalyst for hydrogenation) where the metal center coordinates with both the substrate and hydrogen.
TipA quick way to remember: transition metals are good catalysts because they are electronically flexible (variable oxidation states) and geometrically accommodating (can form complexes with different shapes — tetrahedral, square planar, octahedral). This lets them adjust to different reactants.
Real-World Examples
Process Catalyst Role of Transition Metal Haber process (NH₃ synthesis) Fe (with promoters) Adsorbs N₂ and H₂, weakens N≡N triple bond Contact process (H₂SO₄) V₂O₅ Provides variable oxidation states (V⁵⁺ ↔ V⁴⁺) Hydrogenation of oils Ni Provides surface for H₂ and alkene adsorption - CBSE 2019Set ANNUAL1 markQ.Name the catalyst used in the contact process of manufacture of H2SO4.
›Reveal solutionSolution
The Contact process uses V2O5 (vanadium pentoxide) as catalyst.
In the Contact process for manufacturing sulphuric acid, sulphur dioxide is oxidised to sulphur trioxide: 2SO2 + O2 ⇌ 2SO3. This reaction is slow, so a catalyst is used — vanadium(V) oxide, V2O5, at about 720 K. (Fin …
- CBSE 2017Set ANNUAL1 markQ.Transition elements behave as good catalysts. Explain.
›Reveal solutionSolution
Variable oxidation states let transition metals form intermediates that open up a lower-activation-energy pathway, and their partially-filled d-orbitals let them adsorb and activate reactant molecules on their surface.
Transition elements are widely used as catalysts (e.g. Fe in the Haber process, Ni in hydrogenation, V2O5 in the Contact process, Pt in catalytic converters) mainly because of two related properties:
1. Variable oxidation states: Transition metals can readily switch between multiple stable oxidation states. This allows them to form unstable intermediate compounds with the reactants and then revert back to their original state, effectively providing the reaction with an alternative pathway of lower activation energy than the uncatalysed route, speeding up the reaction without being consumed themselves.
…
🎓Unlock everything free for 14 days
- ✓Full step-by-step solutions
- ✓Concept-first explanations
- ✓Methods, shortcuts & mistakes
- ✓PYQ mapping + timed mock tests
Full access for 14 days. No credit card required.