Q.For a zero order reaction will the molecularity be equal to zero? Explain.
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Start your 14-day free trial to unlock the full solution →The molecularity of a reaction is never zero — it is a theoretical impossibility. For a zero-order reaction, the rate is independent of concentration, but molecularity (the number of molecules colliding in the rate-determining step) must be at least 1. The correct answer is No.
This question trips up many students because the word "zero" appears in both "zero order" and "molecularity zero" — but they refer to completely different ideas. Let's separate them clearly.
Order is an experimental quantity: it tells you how the rate depends on concentration. For a zero-order reaction, rate = (constant), meaning the rate does not change when you change concentration. This happens when the reaction is limited by something other than concentration — for example, a catalyst surface that is fully saturated, or a light intensity in a photochemical reaction.
Molecularity is a theoretical concept: it is the number of molecules (atoms, ions) that must collide simultaneously in the rate-determining step of the reaction mechanism. Molecularity is always a positive integer — 1 (unimolecular), 2 (bimolecular), or rarely 3 (termolecular). There is no such thing as a "zero-molecular" step because a reaction step with zero molecules colliding would mean no reaction occurs.
Common mistake
Do not confuse the order (which can be zero, fractional, or negative) with molecularity (which is always a whole number ≥ 1). They come from different worlds: order is from experiments, molecularity is from mechanism theory.
Now let's walk through the reasoning step by step.
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Define molecularity precisely.
Molecularity refers to the elementary step (a single molecular event) in a reaction mechanism. It counts how many reactant particles come together in that step. For example:
- → unimolecular (molecularity = 1)
- → bimolecular (molecularity = 2)
- → termolecular (molecularity = 3)
There is no elementary step with zero particles — that would be a non-event.
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Understand why zero-order reactions exist.
A zero-order reaction has rate . This happens when the rate-limiting step does not involve the reactant whose concentration is being varied. Common examples:
- Decomposition of on a platinum surface: the surface is saturated, so adding more doesn't speed things up.
- Photochemical reactions where light intensity (not concentration) controls the rate.
In these cases, the overall reaction may have many steps, but the slow step might involve a catalyst site or a photon — not the reactant itself. The order is zero, but the molecularity of that slow step is still 1 or 2 (e.g., a molecule hitting a surface site, or a molecule absorbing a photon).
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Contrast the two concepts directly.
| Property | Order | Molecularity |
|----------|-------|--------------| …
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