Exam 15: Electrolytes, Acids, and Bases

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Which of the following solutions would you expect not to conduct electricity?

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Water can serve both as a Bronsted-Lowry acid and Bronsted-Lowry base.

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What is the pOH of an aqueous solution having a hydrogen-ion concentration of 6.83 × 10-3 mol/L?

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Match each of the acids with the maximum number of H?O+ produced per molecule of acid. -hydrochloric acid

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An electrolyte is a substance that, when dissolved in water, yields a solution that conducts electric current.

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Which of the following compounds is a non-electrolyte when dissolved in distilled water?

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Identify each of the acids as a strong acid or a weak acid. -hydrobromic acid

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Which of the following compounds could be considered an Arrhenius base?

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Which of the following compounds does not qualify as a Bronsted-Lowry acid?

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Identify each of the substances as an electrolyte or non-electrolyte. -aqueous sulfuric acid solution

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Arrhenius' definition of a base is an electrolyte that contains a metal and hydroxide ions that dissociate when placed in water.

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A sodium sulfate solution will not conduct an electric current.

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The acid in the forward reaction is ________. HCO₃- + H₂O → H₂CO₃ + OH-

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When ammonia is dissolved in water, the ionized species are ________.

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Identify each [H?O+] / [OH-] / pH / pOH as acidic or basic. -[OH-] = 1.2 × 10-8

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Identify the household products as acidic or basic. -Household ammonia

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Identify each [H?O+] / [OH-] / pH / pOH as acidic or basic. -pH = 10.24

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Which of the following bases produces two OH- ions per formula unit of base when dissolved in water?

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What is the hydrogen-ion concentration of an aqueous solution having a pH of 4.72?

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Identify each of the acids as a strong acid or a weak acid. -acetic acid

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