Chapter 14: Problem 51
A certain reaction is known to proceed slowly at room temperature. Is it possible to make the reaction proceed at a faster rate without changing the temperature?
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Chapter 14: Problem 51
A certain reaction is known to proceed slowly at room temperature. Is it possible to make the reaction proceed at a faster rate without changing the temperature?
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Which of these species cannot be isolated in a reaction: activated complex, product, intermediate?
Explain why termolecular reactions are rare.
Define activation energy. What role does activation energy play in chemical kinetics?
Sketch a potential-energy-versus-reaction-progress plot for the following reactions: $$ \begin{array}{l} \text { (a) } \mathrm{S}(s)+\mathrm{O}_{2}(g) \longrightarrow \mathrm{SO}_{2}(g) \\ \Delta H^{\circ}=-296.06 \mathrm{~kJ} / \mathrm{mol} \\ \text { (b) } \mathrm{Cl}_{2}(g) \longrightarrow \mathrm{Cl}(g)+\mathrm{Cl}(g) \\\ \Delta H^{\circ}=242.7 \mathrm{~kJ} / \mathrm{mol} \end{array} $$
The decomposition of \(\mathrm{N}_{2} \mathrm{O}\) to \(\mathrm{N}_{2}\) and \(\mathrm{O}_{2}\) is a first-order reaction. At \(730^{\circ} \mathrm{C}\) the half-life of the reaction is \(3.58 \times\) \(10^{3} \mathrm{~min}\). If the initial pressure of \(\mathrm{N}_{2} \mathrm{O}\) is \(2.10 \mathrm{~atm}\) at \(730^{\circ} \mathrm{C},\) calculate the total gas pressure after one halflife. Assume that the volume remains constant.
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