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CHEM1011-CHEM1031-CHEM1051-Chemistry 1A (T1 2025)

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Which transformation could take place at the anode of an electrochemical cell?

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Balance the following equation for the reaction under acidic aqueous conditions. 

Fe2+ + Cr2O72– → Fe3+ + Cr3+

What will the coefficient for water in the balanced reaction be?

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The oxidation state of titanium in TiO is _____.

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Which transformation would you expect to take place at the cathode of an electrochemical cell?

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Balance the following oxidation-reduction reaction using the half-reaction method for the reaction under acidic aqueous conditions.

Cr2O72– + I2→ Cr3+ + IO3

In the balanced equation, what is the coefficient of water?

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The oxidation state of chlorine in Cl2 is

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Consider the following statements:

(i)A reduction half equation contains at least one species that is being reduced and at least one electron on the left hand side of the reaction arrow.
(ii)A redox reaction in an electrochemical cell involves electron transfer between two species where electrons travel between two electrodes via an external electrical circuit.
(iii)A redox reaction where all species are in direct contact with one another does not involve electron transfer.
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The reaction below is exothermic:

2SO2 (g) + O2 (g) ⇌ 2SO3 (g)

Le Châtelier's Principle predicts that ________ will result in an increase in the number of moles of SO3 (g) in the reaction container.

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Consider the reaction below, for which K = 7.26 × 10–2 at 450.0 °C. 

2Cl2 (g) + 2H2O (g) ⇌ 4HCl (g) + O2 (g)

What is the value of K at this temperature for the following reaction?

Cl2 (g) + H2O (g) ⇌ 2HCl (g) + ½O2 (g)

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Consider the following equilibrium reaction:

H2CO3 (aq)  ⇌  H+ (aq) + HCO3 (aq);     K = 5.0 x 10–7

 If the initial concentrations of the species are:

[H2CO3] = 0.12 M;   [H+] = 5.00 x 10–5 M;   [HCO3] = 4.00 x 10–3 M

Which one of the statements below describes the relationship between Q and K and then the correct direction of chemical change?

 

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