Thermodynamics and Enthalpy - Advanced Concepts

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Q. For a reaction with a negative ΔH and a positive ΔS, what can be said about the spontaneity at high temperatures?
  • A. The reaction is non-spontaneous.
  • B. The reaction is spontaneous.
  • C. The reaction is at equilibrium.
  • D. The spontaneity cannot be determined.
Q. In a calorimetry experiment, what does a negative q value indicate?
  • A. Heat is absorbed by the system.
  • B. Heat is released by the system.
  • C. No heat exchange occurs.
  • D. The reaction is at equilibrium.
Q. In a constant pressure process, how is the work done by the system related to the change in enthalpy?
  • A. W = ΔH
  • B. W = -ΔH
  • C. W = ΔH + PΔV
  • D. W = ΔH - PΔV
Q. What is the change in enthalpy (ΔH) for an endothermic reaction?
  • A. ΔH < 0
  • B. ΔH = 0
  • C. ΔH > 0
  • D. ΔH = -RT
Q. What is the effect of increasing temperature on the enthalpy of a reaction that is endothermic?
  • A. Increases ΔH
  • B. Decreases ΔH
  • C. No effect on ΔH
  • D. Reverses the reaction
Q. What is the relationship between enthalpy change and bond dissociation energy?
  • A. ΔH is always equal to bond dissociation energy.
  • B. ΔH is the sum of bond dissociation energies of reactants minus products.
  • C. ΔH is the sum of bond dissociation energies of products minus reactants.
  • D. There is no relationship.
Q. What is the standard enthalpy change for a reaction at equilibrium?
  • A. ΔH = 0
  • B. ΔH < 0
  • C. ΔH > 0
  • D. ΔH is undefined
Q. Which of the following is a correct expression for the Gibbs free energy change (ΔG) in terms of enthalpy (ΔH) and entropy (ΔS)?
  • A. ΔG = ΔH - TΔS
  • B. ΔG = TΔS - ΔH
  • C. ΔG = ΔH + TΔS
  • D. ΔG = ΔH + ΔS
Q. Which of the following statements about the enthalpy of formation is true?
  • A. It is always negative.
  • B. It is the enthalpy change when one mole of a compound is formed from its elements.
  • C. It can be calculated using Hess's law only.
  • D. It is independent of the physical state of the reactants.
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