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Gaokao Chemistry: Chemical Equilibrium and Reactions Flashcards

7 cards from real GAOKAO practice questions. Tap to flip, then mark Knew It or Still Learning — missed cards come back until you master them.

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  1. In the Haber process N₂ + 3H₂ ⇌ 2NH₃ (ΔH = −92 kJ/mol), which conditions maximise yield of NH₃?

    Answer: High pressure, low temperature

    High pressure favours fewer moles of gas (products); low temperature favours the exothermic forward reaction thermodynamically (though kinetics require compromise).

  2. The common ion effect refers to:

    Answer: The decrease in solubility or dissociation when an ion in common with the equilibrium is added

    Adding a common ion shifts the equilibrium toward the undissociated or insoluble form, decreasing dissociation or solubility.

  3. For a reaction with K >> 1, the equilibrium position lies:

    Answer: Far to the right, heavily favouring products

    K >> 1 means [products] >> [reactants] at equilibrium; the reaction essentially goes to completion.

  4. The pH of a 0.01 M HCl solution at 25°C is:

    Answer: 2

    HCl is a strong acid, fully dissociated: [H⁺] = 0.01 M; pH = −log(0.01) = 2.

  5. In a buffer solution made from CH₃COOH and CH₃COO⁻, adding a small amount of strong acid causes:

    Answer: The base component (CH₃COO⁻) to neutralise the acid, minimising pH change

    Buffer action: added H⁺ reacts with the conjugate base CH₃COO⁻ → CH₃COOH, consuming the extra acid and stabilising pH.

  6. Which statement correctly describes Le Chatelier's principle?

    Answer: A system at equilibrium shifts to partially offset any imposed stress

    Le Chatelier's principle states the system partially counteracts the imposed change; it does not fully reverse it, and K only changes with temperature.

  7. The hydrolysis of the salt CH₃COONa in water produces a solution that is:

    Answer: Basic (pH > 7)

    CH₃COO⁻ hydrolyses: CH₃COO⁻ + H₂O ⇌ CH₃COOH + OH⁻; the weak acid anion produces OH⁻, making the solution basic.