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CSEC Chemistry · January 2012 · Paper 2 · Question 1(b)(ii)

Experiment 2 was carried out to determine the heat of solution by mixing 8 g of potassium nitrate in 50 cm³ of water.

Figure 2 shows the thermometer readings for the initial and final temperatures obtained for Experiment 2. Record the reading, in °C, on each thermometer in the space provided.

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Other parts of this question

  1. 1(a)(i)Define the term 'heat of neutralization'.[2 marks]
  2. 1(a)(ii)Use the data in Table 1 to plot a graph of temperature against volume of acid for Experiment 1 using the axes provided on page 5. The first two points have…[3 marks]
  3. 1(a)(iii)From the graph, determine the volume of sulphuric acid required to completely neutralize 25 cm³ of sodium hydroxide.[1 mark]
  4. 1(a)(iv)Given that the difference in temperature from the start of the reaction to the point of neutralization is 18 °C, calculate the heat change at the point of…[3 marks]
  5. 1(b)(i)Define the term 'heat of solution'.[2 marks]
  6. 1(b)(iii)Write a suitable procedure that could be carried out for Experiment 2.[3 marks]
  7. 1(b)(iv)Draw a labelled energy profile diagram for the reaction taking place in Experiment 2.[3 marks]
  8. 1(c)(i)Write a balanced half-equation to represent the change which takes place when Solution X reacts with aqueous iron(II) nitrate.[2 marks]
  9. 1(c)(ii)Explain whether Solution X is behaving as a reducing agent, an oxidizing agent or both.[3 marks]
  10. 1(c)(iii)Describe Observation 3 as indicated in Table 2.[2 marks]

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