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MHT CET · Chemistry · Chemical Kinetics

If Instantaneous rate of reaction is stated as \(-\frac{1}{2} \frac{\mathrm{~d}[x]}{\mathrm{dt}}=-\frac{\mathrm{d}[\mathrm{y}]}{\mathrm{dt}}=\frac{1}{2} \frac{\mathrm{~d}[\mathrm{z}]}{\mathrm{dt}}\), identify the reaction.

  1. A \(x-2 y \rightarrow 2 z\)
  2. B \(2 x+y \rightarrow 2 z\)
  3. C \(x+\mathrm{y} \rightarrow \mathrm{z}\)
  4. D \(2 x-2 y \rightarrow z\)
Verified Solution

Answer & Solution

Correct Answer

(B) \(2 x+y \rightarrow 2 z\)

Step-by-step Solution

Detailed explanation

From rate expression \(-\frac{1}{a}\frac{\mathrm{d}[A]}{\mathrm{dt}}\) for reactants and \(+\frac{1}{b}\frac{\mathrm{d}[B]}{\mathrm{dt}}\) for products: Reactants: \(2x\), \(1y\)