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Consider the following decomposition reaction that takes place in a sealed 2 dm³ container: 2N₂O₅(g) → 4NO₂(g) + O₂(g) The graph below shows how the concentrations of N₂O₅(g) and NO₂(g) change with time - NSC Physical Sciences - Question 5 - 2023 - Paper 2

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Consider-the-following-decomposition-reaction-that-takes-place-in-a-sealed-2-dm³-container:--2N₂O₅(g)-→-4NO₂(g)-+-O₂(g)--The-graph-below-shows-how-the-concentrations-of-N₂O₅(g)-and-NO₂(g)-change-with-time-NSC Physical Sciences-Question 5-2023-Paper 2.png

Consider the following decomposition reaction that takes place in a sealed 2 dm³ container: 2N₂O₅(g) → 4NO₂(g) + O₂(g) The graph below shows how the concentrations... show full transcript

Worked Solution & Example Answer:Consider the following decomposition reaction that takes place in a sealed 2 dm³ container: 2N₂O₅(g) → 4NO₂(g) + O₂(g) The graph below shows how the concentrations of N₂O₅(g) and NO₂(g) change with time - NSC Physical Sciences - Question 5 - 2023 - Paper 2

Step 1

Refer to the graph above and give a reason why curve A represents the change in the concentration of NO₂(g).

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Answer

Curve A represents the concentration of NO₂(g) because it shows a gradual increase in concentration over time as N₂O₅ decomposes. As the reaction proceeds, the amount of NO₂(g) produced rises steadily, indicating that NO₂ is being formed from the decomposition of N₂O₅, hence showing a direct relationship in its concentration increase.

Step 2

Is this statement TRUE or FALSE? Give a reason for the answer.

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Answer

The statement is TRUE. The rate of decomposition of N₂O₅(g) being half the rate of formation of NO₂(g) is consistent with the stoichiometry of the reaction. For every mole of N₂O₅ that decomposes, two moles of NO₂ are formed, indicating that the rate of formation of NO₂ is double that of the decomposition of N₂O₅.

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