UNIT 3: Chemical Kinetics

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Reaction rate depends on:

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Rate constant increases with:

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Higher Ea means:

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Slope of Arrhenius plot is:

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Plot of ln k vs 1/T is:

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Catalyst decreases:

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Increase in temperature increases:

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Ea unit is:

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A is called:

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Arrhenius equation is:

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First-order reaction never:

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For zero order, rate decreases due to:

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Half-life formula for first order:

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Slope of first-order graph is:

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First-order reaction graph (ln[A] vs t) is:

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Graph of zero order is:

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Half-life for zero order depends on:

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Half-life for first order:

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First-order equation:

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Zero-order equation:

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Rate law for elementary reaction:

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Rate constant is independent of:

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Order of reaction for A → B is 1, half-life is:

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Rate constant depends on:

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Rate law cannot be predicted from:

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Order of complex reaction:

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Units of k depend on:

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Pseudo first-order reaction involves:

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If rate quadruples when concentration doubles → order:

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If rate doubles when concentration doubles → order is:

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Order of reaction can be negative in:

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Molecularity applies to:

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Rate = k → order is:

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Rate = k[A][B] → order is:

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Rate = k[A]² → order is:

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Rate law is:

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Collision theory explains:

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Activation energy is:

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Reaction rate doubles when temperature increases by ~:

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Unit of rate constant for first-order reaction:

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For zero-order reaction, rate is:

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Order is determined by:

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Order of reaction can be:

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Molecularity is always:

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Catalyst affects:

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Rate of reaction increases with increase in:

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Instantaneous rate is determined at:

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Average rate is measured over:

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Unit of rate of reaction is:

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The rate of a reaction is expressed as:

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