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Pregunta 1 Informe
All your burette readings (initial and final), as well as the size of your pipette, must be recorded but on no account of experimental procedure is required. All calculations must be done in your answer book.
A is solution of trioxonitrate (V) acid, B is a solution containing 6.90 g of potassium trioxocarbonate (IV) per dm\(^3\)
(a) Put A into the buret and titrate it against 20.0 cm\(^3\) or 25.0 cm\(^3\) portions of B using methy orange or screened methyl orange as indicater. Record the volume of your pipette. Tabulate your burette readings and calculate the average volume A used. The equation for the reaction is \(\mathrm{K_2CO_{3(aq)} + 2HNO_{3(aq)} \to 2KNO_{3(aq)} + CO_{2(g)} + H_2O_{(l)}}\)
(b) From your results and the information provided calculate;
(i) concenytration of solution B in mol dm\(^{-3}\)
(ii) number of potassium ions in 1.00 dm\(^3\) of B [C = 12.0, O = 16.0, K = 39.0, Avogadro constant = 6.02 x 10\(^{23}\) mol \(^{-1}\)]
(a) The actual burette readings and average titre of A are obtained in the laboratory and are not needed for the calculations in (b), which depend only on the stated concentration of B.
(b)(i) Concentration of B in mol dm-3
Molar mass of K2CO3:
\[ M = 2(39.0) + 12.0 + 3(16.0) = 78.0 + 12.0 + 48.0 = 138.0\ \text{g mol}^{-1} \]
Concentration:
\[ C = \frac{\text{mass per dm}^3}{M} = \frac{6.90}{138.0} = 0.0500\ \text{mol dm}^{-3} \]
(b)(ii) Number of potassium ions in 1.00 dm3 of B
Each formula unit of K2CO3 releases 2 K+ ions, so:
\[ n(\text{K}^+) = 2 \times 0.0500 = 0.100\ \text{mol} \]
\[ N(\text{K}^+) = 0.100 \times 6.02\times10^{23} = 6.02\times10^{22}\ \text{ions} \]
Answer: concentration of B = 0.0500 mol dm-3; number of K+ ions in 1.00 dm3 = 6.02 × 1022.
Detalles de la respuesta
(a) The actual burette readings and average titre of A are obtained in the laboratory and are not needed for the calculations in (b), which depend only on the stated concentration of B.
(b)(i) Concentration of B in mol dm-3
Molar mass of K2CO3:
\[ M = 2(39.0) + 12.0 + 3(16.0) = 78.0 + 12.0 + 48.0 = 138.0\ \text{g mol}^{-1} \]
Concentration:
\[ C = \frac{\text{mass per dm}^3}{M} = \frac{6.90}{138.0} = 0.0500\ \text{mol dm}^{-3} \]
(b)(ii) Number of potassium ions in 1.00 dm3 of B
Each formula unit of K2CO3 releases 2 K+ ions, so:
\[ n(\text{K}^+) = 2 \times 0.0500 = 0.100\ \text{mol} \]
\[ N(\text{K}^+) = 0.100 \times 6.02\times10^{23} = 6.02\times10^{22}\ \text{ions} \]
Answer: concentration of B = 0.0500 mol dm-3; number of K+ ions in 1.00 dm3 = 6.02 × 1022.
Pregunta 2 Informe
(a) Name one laboratory equipment used for
(i) keeping salts dry:
(ii) converting vapour to liquid during distillation
(ii) bubbling a gas into a liquid
(b) (i) What technique would you use to purity a sample of sodium chloride contaminated with ammonium chloride?
(i) Given sodium hydroxide solution, outline tne procedure you would use to determine whether or not all the ammonium chloride in (b)(i) above had been removed
(c) State what is observed on carrying out each of the following exercises.
(i) Adding few drops of methyl orange indicator to lime juice:
(ii) Adding few drops of concentrated \( \mathrm{HNO}_3 \) to acidified \( \mathrm{FeSO}_4 \) solution
(iii) Exposing a fresh precipitate of silver chloride to sunlight for 30 minutes
(iv) Adding zinc dust to dilute \( \mathrm{CuCl}_2 \) solution;
(v) Adding dilute \( \mathrm{H}_2\mathrm{SO}_4 \), to \( \mathrm{Pb}(\mathrm{NO}_3)_2 \) solution
(a) Laboratory equipment
(b)(i) Purifying NaCl contaminated with NH4Cl
Use sublimation. On gentle heating, ammonium chloride sublimes (turns directly to vapour and re-solidifies on a cool surface), leaving pure sodium chloride behind, because NaCl does not sublime.
(b)(ii) Testing whether all the NH4Cl has been removed
Place a portion of the residue in a test tube, add sodium hydroxide solution and warm gently. Hold a piece of moist red litmus paper at the mouth of the tube.
(c) Observations
| Exercise | Observation |
|---|---|
| (i) Methyl orange added to lime juice | Indicator turns red/pink (lime juice is acidic). |
| (ii) Conc. HNO3 added to acidified FeSO4 | Pale green solution turns yellow/brown as Fe2+ is oxidised to Fe3+ (a brown ring/colouration). |
| (iii) Fresh AgCl exposed to sunlight for 30 min | White precipitate gradually turns grey then black (photo-decomposition to silver metal). |
| (iv) Zinc dust added to dilute CuCl2 | Blue colour fades to colourless and a reddish-brown deposit of copper appears (Zn displaces Cu). |
| (v) Dilute H2SO4 added to Pb(NO3)2 | A white precipitate of lead(II) tetraoxosulphate(VI), PbSO4, forms. |
Detalles de la respuesta
(a) Laboratory equipment
(b)(i) Purifying NaCl contaminated with NH4Cl
Use sublimation. On gentle heating, ammonium chloride sublimes (turns directly to vapour and re-solidifies on a cool surface), leaving pure sodium chloride behind, because NaCl does not sublime.
(b)(ii) Testing whether all the NH4Cl has been removed
Place a portion of the residue in a test tube, add sodium hydroxide solution and warm gently. Hold a piece of moist red litmus paper at the mouth of the tube.
(c) Observations
| Exercise | Observation |
|---|---|
| (i) Methyl orange added to lime juice | Indicator turns red/pink (lime juice is acidic). |
| (ii) Conc. HNO3 added to acidified FeSO4 | Pale green solution turns yellow/brown as Fe2+ is oxidised to Fe3+ (a brown ring/colouration). |
| (iii) Fresh AgCl exposed to sunlight for 30 min | White precipitate gradually turns grey then black (photo-decomposition to silver metal). |
| (iv) Zinc dust added to dilute CuCl2 | Blue colour fades to colourless and a reddish-brown deposit of copper appears (Zn displaces Cu). |
| (v) Dilute H2SO4 added to Pb(NO3)2 | A white precipitate of lead(II) tetraoxosulphate(VI), PbSO4, forms. |
Pregunta 3 Informe
Credit will be given for strict adherence to instructions, for observations precisely recorded and for accurate inferences. All tests observations and inferences must be clearly entered in your answer book. in ink, at the time they are made.
C is a mixture of two simple salts. Carry out the following exercises on C. Record your observations and identify any gases evolved. Sate the conclusion you draw from the result of each test.
(a) Put all of C into a beaker of boiling tube and add about \(10\text{cm}^3\) of distilled water. Stir well and filter. Keep the residue and keep the residue and the filtrate. Test the filtrate with litmus
(b) Add about \(1\text{ cm}^3\) of dilute hydrochloric acid to the residue in a test tube and warm gently Divide the reaction mixture into two portions
(c)(i) To the first portion from (b) add saturated sodiuim trioxocarbonate (V) solution in excess
(d) To bout \(2\text{cm}^2\) of the filtrate from (a) add a few drops of barium chloride solution followed by excess dilute hydrochloric acid
| Test | Observation | Inference / conclusion |
|---|---|---|
| (a) Add water to C, stir and filter. Test the filtrate with litmus paper. | Part of C dissolves, leaving a green insoluble residue. A colourless filtrate is obtained. The filtrate has no effect on red or blue litmus paper. | C contains a soluble salt and an insoluble salt. The soluble salt gives a neutral solution. |
| (b) Add dilute hydrochloric acid to the residue and warm gently. | Effervescence occurs. A colourless, odourless gas is evolved; it turns limewater milky. The green residue dissolves to give a blue-green solution. | The gas is carbon(IV) oxide, \(\mathrm{CO_2}\); hence \(\mathrm{CO_3^{2-}}\) is present. The blue-green solution indicates \(\mathrm{Cu^{2+}}\). |
| (c)(i) Add saturated sodium trioxocarbonate(V) solution in excess to one portion from (b). | Effervescence occurs at first. A blue-green precipitate is then formed and remains insoluble in excess sodium trioxocarbonate(V) solution. | The initial effervescence is due to reaction of excess hydrochloric acid with carbonate ions. The blue-green precipitate confirms \(\mathrm{Cu^{2+}}\) ions. |
| (d) Add barium chloride solution to the filtrate from (a), followed by excess dilute hydrochloric acid. | A white precipitate is formed. The precipitate does not dissolve in excess dilute hydrochloric acid. | Tetraoxosulphate(VI) ions, \(\mathrm{SO_4^{2-}}\), are present. |
Equations:
\[\mathrm{CuCO_3(s)+2HCl(aq)\rightarrow CuCl_2(aq)+H_2O(l)+CO_2(g)}\]
\[\mathrm{Ba^{2+}(aq)+SO_4^{2-}(aq)\rightarrow BaSO_4(s)}\]
Final conclusion: C is a mixture of insoluble copper(II) trioxocarbonate(IV), \(\mathrm{CuCO_3}\), and a soluble tetraoxosulphate(VI), represented by sodium tetraoxosulphate(VI), \(\mathrm{Na_2SO_4}\).
Detalles de la respuesta
| Test | Observation | Inference / conclusion |
|---|---|---|
| (a) Add water to C, stir and filter. Test the filtrate with litmus paper. | Part of C dissolves, leaving a green insoluble residue. A colourless filtrate is obtained. The filtrate has no effect on red or blue litmus paper. | C contains a soluble salt and an insoluble salt. The soluble salt gives a neutral solution. |
| (b) Add dilute hydrochloric acid to the residue and warm gently. | Effervescence occurs. A colourless, odourless gas is evolved; it turns limewater milky. The green residue dissolves to give a blue-green solution. | The gas is carbon(IV) oxide, \(\mathrm{CO_2}\); hence \(\mathrm{CO_3^{2-}}\) is present. The blue-green solution indicates \(\mathrm{Cu^{2+}}\). |
| (c)(i) Add saturated sodium trioxocarbonate(V) solution in excess to one portion from (b). | Effervescence occurs at first. A blue-green precipitate is then formed and remains insoluble in excess sodium trioxocarbonate(V) solution. | The initial effervescence is due to reaction of excess hydrochloric acid with carbonate ions. The blue-green precipitate confirms \(\mathrm{Cu^{2+}}\) ions. |
| (d) Add barium chloride solution to the filtrate from (a), followed by excess dilute hydrochloric acid. | A white precipitate is formed. The precipitate does not dissolve in excess dilute hydrochloric acid. | Tetraoxosulphate(VI) ions, \(\mathrm{SO_4^{2-}}\), are present. |
Equations:
\[\mathrm{CuCO_3(s)+2HCl(aq)\rightarrow CuCl_2(aq)+H_2O(l)+CO_2(g)}\]
\[\mathrm{Ba^{2+}(aq)+SO_4^{2-}(aq)\rightarrow BaSO_4(s)}\]
Final conclusion: C is a mixture of insoluble copper(II) trioxocarbonate(IV), \(\mathrm{CuCO_3}\), and a soluble tetraoxosulphate(VI), represented by sodium tetraoxosulphate(VI), \(\mathrm{Na_2SO_4}\).
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