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9th – Chemistry – Chapter 5 – Energetics

Section 1: MCQs

  1. Identify the exothermic reaction from the following.
    a) 2H₂(g) + O₂(g) → 2H₂O(l) + 571.6 kJ b) H₂(g) + I₂(s) → 2HI(g) − 53.08 kJ c) N₂(g) + O₂(g) → 2NO(g) − 180.6 kJ d) Melting of ice
  2. What effect does a catalyst have on activation energy?
    a) Increases activation energy b) Decreases activation energy c) Stops the reaction d) Does not affect the reaction
  3. Which statement correctly describes an endothermic reaction?
    a) A reaction where energy is released b) A reaction that absorbs heat from the surroundings c) A reaction that produces heat d) A reaction that needs no energy
  4. Which statement about bond formation is correct?
    a) It is an exothermic process b) It is an endothermic process c) It absorbs energy d) It does not release energy
  5. Which of the following is the main product of anaerobic respiration?
    a) Oxygen b) Ethanol and carbon dioxide c) Water d) Glucose
  6. In what way does enthalpy differ from heat?
    a) Heat is a form of energy, while enthalpy is the total heat content of a system b) Heat is measured in joules, while enthalpy is measured in calories c) Heat is essential to a system, while enthalpy is not d) Heat is absorbed, while enthalpy is released
  7. Which of the following reactions has the lowest activation energy?
    a) H₂(g) + ½O₂(g) → H₂O(g) b) C(s) + O₂(g) → CO₂(g) c) NaCl(aq) + AgNO₃(aq) → AgCl(s) + NaNO₃(aq) d) H₂(g) + I₂(s) → 2HI(g)
  8. In a chemical reaction, what do the surroundings refer to?
    a) Only the air b) Anything outside the system c) Only the reactants d) Only the products
  9. During an exothermic reaction, what happens to the surroundings?
    a) They get cooler b) They get warmer c) They remain the same d) They absorb energy
  10. Which option correctly defines enthalpy?
    a) The energy required to break a bond b) The total amount of heat energy present in a system c) The energy released during a reaction d) The energy absorbed during a reaction
  11. Which statement explains how self-heating or self-cooling packs work?
    a) They contain reactants that undergo exothermic or endothermic reactions b) They contain catalysts that speed up reactions c) They contain enzymes that break down food d) They contain lipids that store energy
  12. Which of the following makes up the system in a chemical reaction?
    a) Only the reactants b) Only the products c) Reactants, products, catalyst, and solvent d) Only the surroundings
  13. Why does washing clothes at 60°C consume more energy than washing at 30°C?
    a) More heat is required to break bonds b) Less heat is needed c) More water is used d) No energy difference exists
  14. What is the energy change when bonds are broken?
    a) Energy is absorbed b) Energy is released c) No energy change occurs d) It depends on the reaction
  15. Which method is used to calculate the enthalpy change (ΔH)?
    a) By measuring the initial and final temperature b) By adding up all bond energies c) By measuring energy absorbed and released d) By counting the number of molecules
  16. Which statement defines aerobic respiration?
    a) Respiration that occurs in the absence of oxygen b) Respiration that occurs in the presence of oxygen c) Respiration that produces ethanol d) Respiration that produces lactic acid
  17. Select the endothermic reaction from the following.
    a) 2H₂(g) + O₂(g) → 2H₂O(l) + 571.6 kJ b) C(s) + O₂(g) → CO₂(g) + 393.5 kJ c) H₂(g) + I₂(s) → 2HI(g) − 53.08 kJ d) Combustion of methane
  18. Which statement defines activation energy?
    a) The energy released during a reaction b) The energy absorbed during a reaction c) The minimum energy required for a successful collision d) The total energy of the reactants
  19. The reaction H₂ + Cl₂ → 2HCl is exothermic. What is the source of the energy needed to break the bonds of H₂ and Cl₂?
    a) By collisions between the molecules b) From sunlight c) From the surroundings d) By collisions of the molecules with the walls of the container
  20. What is the energy efficiency of traditional electric bulbs?
    a) 90% of energy is used as light b) 50% of energy is wasted c) They have 100% efficiency d) 90% of energy is wasted as heat
  21. What function does a catalyst perform in a chemical reaction?
    a) It increases the activation energy b) It changes the products of the reaction c) It absorbs energy from the reaction d) It decreases the activation energy
  22. Which set lists the products of anaerobic respiration?
    a) ATP + CO₂ + H₂O b) CO₂ + H₂ c) ATP + Ethanol + H₂O d) Ethanol + H₂O
  23. Which of the following is the main source of energy in fireworks?
    a) Exothermic reactions b) Endothermic reactions c) Catalysts d) Enzymes
  24. How does the activation energy change when a catalyst is added?
    a) It increases b) It decreases c) It remains the same d) It becomes zero
  25. Which statement about bond breaking is correct?
    a) It is an exothermic process b) It is an endothermic process c) It releases energy d) It does not require energy
  26. What is the function of ATP in the body?
    a) It stores energy for long-term use b) It provides immediate energy for metabolic activities c) It acts as a catalyst in reactions d) It is a byproduct of anaerobic respiration
  27. Which of the following defines a system in chemistry?
    a) The surrounding environment b) The energy released during a reaction c) The catalyst used in a reaction d) The physical or chemical change under study
  28. Which of the following is an everyday example of an exothermic reaction?
    a) Evaporation of water b) Burning wood c) Melting of ice d) Dissolving salt in water
  29. What makes the combustion of fuel an exothermic reaction?
    a) It absorbs more energy than it releases b) It releases more energy than it absorbs c) It has no energy change d) It only forms weak bonds
  30. Which statement defines anaerobic respiration?
    a) Respiration that occurs in the absence of oxygen b) Respiration that occurs in the presence of oxygen c) Respiration that produces water d) Respiration that produces ATP
  31. Boiling water in a beaker is an example of which type of change?
    a) Exothermic change b) Isothermic change c) Adiabatic change d) Endothermic change
  32. Identify the endothermic reaction among the following.
    a) Freezing water b) Burning wood c) Decomposition of calcium carbonate d) Condensation of steam
  33. How are the surroundings defined in a chemical reaction?
    a) The reactants and products b) The energy absorbed during the reaction c) The catalyst used in the reaction d) Everything outside the system
  34. Which statement describes the transition state in a chemical reaction?
    a) The state where reactants are fully converted to products b) The state where products are fully converted to reactants c) The state where no energy is involved d) The state where reactants have the highest energy
  35. The average bond energies of O-O and O=O are 146 and 496 kJ mol⁻¹, respectively. Calculate the enthalpy change in kJ for the reaction H₂O₂ → H₂O + ½ O₂.
    a) −102 kJ b) +102 kJ c) +350 kJ d) +394 kJ
  36. What does it indicate when a chemical reaction is exothermic?
    a) The bonds which break are weaker than those which are formed. b) The bonds which break are stronger than those which are formed. c) The exothermic nature of the reaction is not concerned with bond formation or bond breakage. d) It shows that the reactants are more stable than the products.
  37. What part does lightning play in the formation of nitric oxide?
    a) It provides the necessary activation energy for the reaction b) It acts as a catalyst c) It absorbs energy from the reaction d) It breaks down nitric oxide
  38. What is the value of the bond dissociation energy of H₂?
    a) 435 kJ/mol b) 498 kJ/mol c) 484 kJ/mol d) 568 kJ/mol
  39. Which one of the following is an exothermic reaction?
    a) Boiling water b) Photosynthesis c) Combustion of fuel d) Electrolysis of water
  40. The temperature rises when NaOH and HCl are mixed. What type of reaction is this?
    a) Endothermic with a positive enthalpy change. b) Endothermic with a negative enthalpy change. c) Exothermic with a positive enthalpy change. d) Exothermic with a negative enthalpy change.
  41. Which of the following describes activation energy?
    a) The total heat content of a system b) The energy required to start a reaction c) The energy released in an exothermic reaction d) The final energy of the products
  42. Which statement correctly defines an exothermic reaction?
    a) A reaction that absorbs heat b) A reaction that evolves heat c) A reaction with no energy change d) A reaction that requires light energy
  43. Which of the following makes use of exothermic reactions?
    a) Cooking food b) Melting ice c) Photosynthesis d) Electrolysis
  44. What is the reason power plants rely on combustion?
    a) It is an exothermic reaction that produces heat b) It absorbs energy c) It is an endothermic reaction d) It cools down the environment
  45. Which option correctly defines enthalpy (H)?
    a) Total amount of heat content in a compound b) A form of light energy c) The energy required to break bonds d) The energy stored in the surroundings
  46. What is the effect of adding a catalyst to a reaction?
    a) The reaction speeds up b) The reaction stops c) The energy required increases d) The reaction slows down
  47. The average bond dissociation energy of the C-H bond is 412 kJ mol⁻¹. For which of the following processes will the enthalpy change be close to 412 kJ?
    a) CH₄(g) → C(g) + 2H₂(g) b) CH₄(g) → CH₃(g) + H c) CH₄(g) → CH₂(g) + H₂ d) CH₄(g) → CH(g) + H₃
  48. The change C (Diamond) → C (Graphite), ΔH = −3 kJ mol⁻¹, is exothermic. Why does it not occur?
    a) The structure of diamond is more stable than that of graphite. b) Diamond has stronger covalent bonds than graphite. c) The change from diamond to graphite has a high activation energy. d) The density of graphite is less than that of diamond.
  49. What is the energy change when new bonds are formed?
    a) Energy is absorbed b) Energy is released c) Energy is neutralized d) The reaction stops
  50. In what form is glucose mainly stored in the body?
    a) Lipids b) Glycogen c) ATP d) Pyruvate
  51. What is the enthalpy change for the reaction 2H₂(g) + O₂(g) → 2H₂O(g)?
    a) −568 kJ b) +568 kJ c) −284 kJ d) +284 kJ
  52. The transfer of energy from the surroundings to the system is called:
    a) Exothermic b) Isothermic c) Adiabatic d) Endothermic
  53. Which hydrogen halide is formed endothermically from its elements?
    a) HCl b) HF c) HBr d) HI
  54. Aerobic respiration belongs to which type of reaction?
    a) Endothermic b) Exothermic c) Neutral d) Photochemical
  55. Which unit is used to measure enthalpy?
    a) J/s b) kJ mol⁻¹ c) Calories d) Watts
  56. What function do lipids perform in the body?
    a) They are the primary source of immediate energy b) They serve as an energy reserve c) They are used to produce ATP directly d) They are not involved in energy storage
  57. Enthalpy is expressed in which unit?
    a) Joules b) kJ mol⁻¹ c) Calories d) Watts
  58. During an endothermic reaction, what happens to the surroundings?
    a) They get cooler b) They get warmer c) They remain the same d) They release energy
  59. In which part of the cell does aerobic respiration take place?
    a) Cytoplasm b) Mitochondria c) Nucleus d) Cell membrane
  60. Which type of respiration releases more energy?
    a) Anaerobic respiration b) Aerobic respiration c) Fermentation d) None of these
  61. What occurs when energy moves from the surroundings to the system?
    a) The change is called exothermic b) The change is called endothermic c) The system cools down d) The surrounding absorbs heat

Short Questions

(i) Differentiate between heat and enthalpy.
(ii) How is enthalpy change measured in a chemical reaction?
(iii) Why do chemical reactions require activation energy?
(iv) Give an example of an exothermic reaction used in daily life.
(v) What happens to energy when a bond is formed?
(vi) Define an endothermic reaction with an example.
(vii) How does energy transfer occur between a system and its surroundings?
(viii) Why do vehicles rely on combustion reactions?
(ix) Write the chemical equation for anaerobic respiration.
(x) How does respiration release energy?
(xi) What is meant by heat content?
(xii) Name one example of a catalyst used in industry.
(xiii) Why is breaking of a bond an endothermic process?
(xiv) What is the role of mitochondria in respiration?
(xv) Who was the first scientist to use the word ‘energy’ in physics?
(xvi) How does activation energy affect the rate of a reaction?
(xvii) Write the chemical equation for aerobic respiration.
(xviii) How does glycolysis produce ATP?
(xix) Why is enthalpy important in chemical reactions?
(xx) How does the combustion of petrol generate energy?
(xxi) Is boiling water an endothermic or exothermic change? Why?
(xxii) Define an exothermic reaction with an example.
(xxiii) Define aerobic respiration.
(xxiv) What is the function of a catalyst in a chemical reaction?
(xxv) What is the role of glycogen in our body?
(xxvi) What is the difference between enthalpy and enthalpy change?
(xxvii) Give an example of an endothermic reaction used in daily life.
(xxviii) Why does melting ice require energy while freezing releases energy?
(xxix) Why does adding a catalyst not affect the enthalpy change (ΔH) of a reaction?
(xxx) Why does lightning cause nitrogen to react with oxygen in the atmosphere?
(xxxi) How are exothermic reactions used in power plants?
(xxxii) What is the significance of energy profile diagrams?
(xxxiii) Why is it essential to cook some food items while others can be eaten raw?
(xxxiv) What happens to the surroundings during an endothermic reaction?
(xxxv) Why is bond formation an exothermic process?
(xxxvi) What is a system in chemistry?
(xxxvii) Why do fireworks look spectacular? What type of chemical compounds undergo chemical reactions during this activity?
(xxxviii) What type of reaction occurs when energy is transferred from surroundings to a system?
(xxxix) What is the role of exothermic reactions in fireworks?
(xl) What is the sign of enthalpy change (ΔH) for an endothermic reaction?
(xli) What is the unit of enthalpy?
(xlii) What happens to energy when a bond is broken?
(xliii) Why does the temperature of a container increase in an exothermic reaction?
(xliv) Why does the reaction between sodium metal and water proceed violently?
(xlv) What is meant by the standard enthalpy of reaction (ΔH°)?
(xlvi) What would happen if all chemical reactions were endothermic?
(xlvii) What is the sign of enthalpy change (ΔH) for an exothermic reaction?
(xlviii) Draw the reaction profiles for two exothermic reactions, one of which moves faster than the other.
(xlix) Define enthalpy (H).
(l) What is meant by surroundings in a chemical reaction?
(51) Why does the reaction between atmospheric gases oxygen and nitrogen not take place under normal conditions, but in the presence of lightning, these gases react to give NO. Does the reaction stop as soon as the lightning stops?
(52) Depict the transition state for the following reaction: H₂ + Cl₂ → 2HCl
(53) What is a transition state in a chemical reaction?
(54) Can an exothermic reaction be reversed? Explain.
(55) Why is the energy of the transition state higher than reactants or products?
(56) How do lipids serve as an energy reserve?
(57) What determines whether a reaction is overall exothermic or endothermic?
(58) Why do strong bonds release more energy when formed?
(59) How does a catalyst affect the activation energy of a reaction?
(60) What is glycogen? Where is it stored in the human body?
(61) Why is enthalpy change (ΔH) important in chemical reactions?
(62) What is activation energy?
(63) Define thermodynamics in the context of chemistry.
(64) Define anaerobic respiration.
(65) What happens when fuels like gas and coal burn?
(66) Why can’t we measure total enthalpy directly?
(67) Why is bond breaking an endothermic process?
(68) Reaction between natural gas (CH₄) and atmospheric oxygen does not take place when mixed, but starts immediately when a burning matchstick is introduced, continuing until the reactants are used up. Explain

Long Questions

  1. Describe the importance of exothermic reactions in generating energy for daily activities.
  2. Define system and surroundings. Explain their role in energy transfer with examples.
  3. Define exothermic and endothermic reactions. Explain with energy profile diagrams.
  4. Define the following terms: (a) Activation energy (b) Transition state (c) Aerobic respiration.
  5. Explain the role of lipids in our body.
  6. Given the bond energies:
    H₂ = 436 kJ/mol
    I₂ = 151 kJ/mol
    HI = 299 kJ/mol
    Calculate the enthalpy change for the reaction:
    H₂ + I₂ → 2HI
    H₂ = 436 kJ/mol
    I₂ = 151 kJ/mol
    HI = 299 kJ/mol
    H₂ + I₂ → 2HI
  7. In an industrial reaction, the decomposition of CaCO₃ absorbs 178 kJ/mol of energy. Determine whether this reaction is endothermic or exothermic and explain why.
  8. Discuss aerobic and anaerobic respiration with chemical equations.
  9. Explain the role of combustion reactions in everyday life.
  10. Explain why the formation of a bond is always an exothermic process.
  11. Explain the difference between the terms heat and enthalpy.
  12. What is enthalpy? How is it different from heat? Discuss with examples.
  13. Find the enthalpy change of the following reaction using the given data:
    N₂ + O₂ → 2NO
    Bond dissociation energy of N₂ = 958.38 kJ/mol.
    Bond dissociation energy of O₂ = 498 kJ/mol.
    Bond formation energy of NO = −626 kJ/mol
  14. How is energy transferred in chemical reactions? Explain bond breaking and bond formation with examples.
  15. Determine the energy required to break all bonds in one mole of water molecules if the bond dissociation energy of O-H is 484 kJ/mol.
  16. Explain activation energy and transition state with the help of energy profile diagrams.
  17. Calculate the enthalpy change for the formation of one mole of gaseous water, given:
    Bond energy of H₂ = 435 kJ/mol
    Bond energy of O₂ = 498 kJ/mol
    Bond formation energy of O-H = 484 kJ/mol
    Bond energy of H₂ = 435 kJ/mol
    Bond energy of O₂ = 498 kJ/mol
    Bond formation energy of O-H = 484 kJ/mol
  18. Calculate the enthalpy change for the reaction:
    C + O₂ → CO₂
    Given that the bond energy of O=O is 498 kJ/mol and the bond energy of C=O is 799 kJ/mol.
    ری ایکشن کے لیے اینتھالپی چینج معلوم کریں:
    C + O₂ → CO₂
    O=O کی بانڈ انرجی 498 کلو جول/مول ہے اور C=O کی بانڈ انرجی 799 کلو جول/مول ہے۔
  19. How do catalysts affect chemical reactions? Explain with an example.

Answer Key

  1. a) 2H₂(g) + O₂(g) → 2H₂O(l) + 571.6 kJ
  2. b) Decreases activation energy
  3. b) A reaction that absorbs heat from the surroundings
  4. a) It is an exothermic process
  5. b) Ethanol and carbon dioxide
  6. a) Heat is a form of energy, while enthalpy is the total heat content of a system
  7. c) NaCl(aq) + AgNO₃(aq) → AgCl(s) + NaNO₃(aq)
  8. b) Anything outside the system
  9. b) They get warmer
  10. b) The total amount of heat energy present in a system
  11. a) They contain reactants that undergo exothermic or endothermic reactions
  12. c) Reactants, products, catalyst, and solvent
  13. a) More heat is required to break bonds
  14. a) Energy is absorbed
  15. c) By measuring energy absorbed and released
  16. b) Respiration that occurs in the presence of oxygen
  17. c) H₂(g) + I₂(s) → 2HI(g) − 53.08 kJ
  18. c) The minimum energy required for a successful collision
  19. b) From sunlight
  20. d) 90% of energy is wasted as heat
  21. d) It decreases the activation energy
  22. c) ATP + Ethanol + H₂O
  23. a) Exothermic reactions
  24. b) It decreases
  25. b) It is an endothermic process
  26. b) It provides immediate energy for metabolic activities
  27. d) The physical or chemical change under study
  28. b) Burning wood
  29. b) It releases more energy than it absorbs
  30. a) Respiration that occurs in the absence of oxygen
  31. d) Endothermic change
  32. c) Decomposition of calcium carbonate
  33. d) Everything outside the system
  34. d) The state where reactants have the highest energy
  35. b) +102 kJ
  36. a) The bonds that break are weaker than those which are formed.
  37. a) It provides the necessary activation energy for the reaction
  38. a) 435 kJ/mol
  39. c) Combustion of fuel
  40. d) Exothermic with a negative enthalpy change.
  41. b) The energy required to start a reaction
  42. b) A reaction that evolves heat
  43. a) Cooking food
  44. a) It is an exothermic reaction that produces heat
  45. a) Total amount of heat content in a compound
  46. a) The reaction speeds up
  47. b) CH₄(g) → CH₃(g) + H
  48. c) The change from diamond to graphite has high activation energy.
  49. b) Energy is released
  50. b) Glycogen
  51. a) −568 kJ
  52. d) Endothermic
  53. d) HI
  54. b) Exothermic
  55. b) kJ mol⁻¹
  56. b) They serve as an energy reserve
  57. b) kJ mol⁻¹
  58. a) They get cooler
  59. b) Mitochondria
  60. b) Aerobic respiration
  61. b) The change is called endothermic

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