The standardization of solutions can be done either directly or indirectly. Describe the two methods and list at least two examples of primary standard reagents.
(g)
From Table 7, determine the volume of concentrated H$_2$SO$_4$ to be added to water to make 1 L of 0.2 M H$_2$SO$_4$ solution.
1 alama
(a)
Describe the direct method of preparing solutions.
1 alama
(a)
List the chemicals required for the experiment described in "The Procedure" section.
0 alama
(h)
From Table 8, state the mass of Na$_2$S$_2$O$_3$.5H$_2$O required to prepare 1 L of 0.3 M solution.
1 alama
(c)
Calculate the molarity of the concentrated nitric acid.
3 alama
(f)
From Table 6, state the approximate volume of concentrated HNO$_3$ required to prepare 1 L of 0.4 M HNO$_3$ solution.
1 alama
(e)
From Table 5, determine the approximate volume of concentrated HCl (35% purity, 1.18 g/cm$^3$ density) required to prepare 1 L of 1 M HCl solution.
1 alama
(d)
Using the dilution formula M$_c$V$_c$ = M$_d$V$_d$, calculate the volume of concentrated nitric acid required to prepare 1000 cm$^3$ of 0.5 M HNO$_3$ solution.
2 alama
(b)
Describe the indirect method of preparing solutions.
1 alama
(b)
List the apparatuses needed by the candidate for the Standard Enthalpy of Neutralization experiment.
0 alama
(c)
List at least two examples of primary standard reagents.
2 alama
Boresha ili kuona majibu ya mfano.
4.1 alama
It is strongly advised that all apparatuses in the set up be disconnected and cleaned thoroughly. Why?
(d)
Describe what each graph represents and how it helps in understanding the effect of surface area on reaction rate.
4 alama
(a)
What observation indicates that a compound is hydrated when heated?
1 alama
(a)
Plot a graph of volume (concentration) of sodium thiosulphate against time. What does the shape of the graph looks like and what does it indicate?
0 alama
(none)
It is strongly advised that all apparatuses in the set up be disconnected and cleaned thoroughly. Why?
1 alama
(b)
State the reagents used to confirm the presence of water.
1 alama
(b)
Plot a graph of the volume (concentration) of sodium thiosulphate against reciprocal of time (1/t). Give an interpretation of the shape of the graph.
0 alama
((a)(i)
List the common laboratory fittings that might be required for this experiment (apart from those listed).
2 alama
(c)
Molarity
0 alama
(c)
What observation suggests that a compound is a nitrate?
1 alama
(d)
%
0 alama
(e)
S.G.
0 alama
(f)
Required volume (mL)
0 alama
Boresha ili kuona majibu ya mfano.
Sehemu B
3.0 alamas
Record your results in a tabular form.
Qualitative Analysis is a process involving the use of bench reagents in the identification of components of a chemical substance. Qualitative analysis involves identifying substances present in a sample qualitatively. It is used to determine the presence of anions and cations in a given sample. However, teachers, tutors and laboratory technicians face several challenges preparing bench reagents needed for qualitative analysis practical works.
A Specific Objective
In this section, the teacher, the tutor and the laboratory technician should be able to prepare necessary bench reagents for carrying out chemistry experiments to determine unknown cations and anions from given samples.
Key Issues
Apparatuses Needed by the Teacher, the Tutor or the Laboratory Technician
• A Chemical balance or a digital balance
• Volumetric flasks
• Beakers, watch glasses
• Filter papers
• Reagent bottles (clear and brown)
• Glass rods
• Wash bottles
• Labels.
Apparatuses Needed by the Candidate
• Boiling tubes (pyrex)
• Wash bottle
• A test tube holder
• A nichrome or a platinum wire
• Watch glasses
Note: Each candidate should be given a Qualitative Analysis Guide (QAG) sheet which is provided by the National Examinations Council of Tanzania (NECTA). The guide is easily downloaded at https://www.necta.go.tz/approved_exam_guides. Make copies of the QAG to be enough for all of your candidates.
Chemicals
• Hydrochloric acid
• nitric acid
• sulphuric acid
• sodium hydroxide
(v)
Record your results in a tabular form.
0 alama
(a)
What is the purpose of using concentrated hydrochloric acid in a flame test?
1 alama
(i)
Apparatuses Needed by the Teacher, the Tutor and the Laboratory Technician
0 alama
(calcu)
Calculate the molarity of a stock solution of H2O2 with a volume strength of 100% v/v.
2 alama
(a)
Plot a graph of volume (concentration) of sodium thiosulphate against time. What does the shape of the graph looks like and what does it indicate?
0 alama
(none)
Why is it important that small beakers should be uniform for all candidates?
2 alama
(b)
Identify the characteristic flame colour for each of the following metal ions:
(i) Sodium (Na)
(ii) Calcium (Ca)
2 alama
(ii)
Apparatuses needed by a candidate
0 alama
(volum)
Calculate the volume of concentrated H2O2 (8.93 M) needed to prepare 1000 cm3 of 0.1 M H2O2 solution using the dilution law.
3 alama
(b)
Plot a graph of the volume (concentration) of sodium thiosulphate against reciprocal of time (1/t). Give an interpretation of the shape of the graph.
0 alama
(c)
A student performed a flame test and observed a green/blue flame. Which metal ion could be present?
1 alama
(iii)
Chemicals
0 alama
(c)
Why is the prepared KI solution protected from direct light?
1 alama
(iv)
Note (i) Organic solvents are used in the form they are bought.
0 alama
(d)
What is the purpose of storing the solution in amber bottles?
1 alama
(e)
S.G.
0 alama
(v)
Note (ii) Each candidate should be given a pipette filler. Sucking liquid chemicals with mouth is strongly discouraged.
0 alama
(f)
Required volume (mL)
0 alama
(vi)
Add water up to the 1000 cm3 mark
0 alama
Boresha ili kuona majibu ya mfano.
15.15 alamas
The titration of 25.0 cm$^3$ of an acid solution gave a result that the molarity of the acid was found to be 0.0833 M. However, the expected molarity of this acid solution was 0.1 M. This indicates that the acid solution is less concentrated than expected.
To standardize such a solution, more stock solution needs to be added to it to raise the concentration. The relation of standardization is given by:
$$M_{1}V_{1} = M_{2}V_{2} + M_{3}V_{3}$$
Where:
$M_{1}$ = required molarity of a solution (known)
$M_{2}$ = calculated molarity of a solution (known from the titration experiment)
$M_{3}$ = molarity of a stock solution (known)
$V_{3}$ = volume of a stock solution (unknown)
$V_{1}$ = total volume of a prepared solution for the whole experiment.
(a) Calculate the molarity of a prepared solution ($M_2$) if $M_1 = 0.1 M$, $V_1 = 5.0 L$, and the calculated molarity $M_2 = 0.0833 M$ was obtained by titrating 25.0 cm$^3$ of acid with 30.0 cm$^3$ of 0.1 M NaOH.
(b) Calculate the volume required for preparing the solution ($V_1$).
(c) Calculate the volume of a stock solution required ($V_3$) for the prepared solution if $M_3 = 12 M$.
(a)
Calculate the molarity of a prepared solution ($M_2$) if $M_1 = 0.1 M$, $V_1 = 5.0 L$, and the calculated molarity $M_2 = 0.0833 M$ was obtained by titrating 25.0 cm$^3$ of acid with 30.0 cm$^3$ of 0.1 M NaOH.
5 alama
(b)
Calculate the volume required for preparing the solution ($V_1$).
3 alama
(c)
Calculate the volume of a stock solution required ($V_3$) for the prepared solution if $M_3 = 12 M$.
7 alama
Boresha ili kuona majibu ya mfano.
Sehemu C
5.0 alamas
The experiment described below is about the effect of concentration of reactants on the rate of reaction.
(i) Measure 50 cm3 of 0.1 M sodium thiosulphate ($Na_2S_2O_3$) solution in a beaker.
(ii) Draw a cross on a white piece of paper and place the beaker or a conical flask on it.
(iii) Add 50 cm3 of the sulphuric acid and immediately start a stopwatch. The flask should be swirled once or twice before it is placed on the piece of paper.
(iv) Look down vertically on the cross and record the time taken for the cross to disappear.
(v) Repeat procedures (i) – (iv) using 40, 30, 20 and 10 cm3 of sodium thiosulphate. Always top up the solution with distilled water to make 50 cm3 before adding the acid solution.
(vi) Tabulate the data from each experiment in columns indicating the volume of sodium thiosulphate solution (cm3), the volume of water (cm3), time (s), and the rate ($s^{-1}$) as shown in Table 10.
Suggested Mass of $Na_2S_2O_3$ (158 g) Required to Prepare 1 L of 0.1 - 0.5 M
S/N
Concentration (mol/dm3)
Mass of $Na_2S_2O_3$ (g)
1.
0.1
15.8
2.
0.2
31.6
3.
0.3
47.4
4.
0.4
63.2
5.
0.5
79.0
The Experimental Data
Experiment
Vol. of $Na_2S_2O_3$ (cm3)
Vol. of $H_2O$ (cm3)
Time (s)
Rate ($s^{-1}$)
1.
50
0
2.
40
10
3.
30
20
4.
20
30
5.
10
40
(e)
Explain the role of a catalyst in a chemical reaction, referencing the concept of activation energy.
3 alama
(a)
Name the test performed above.
1 alama
(a)
Plot a graph of volume (concentration) of sodium thiosulphate against time. What does the shape of the graph looks like and what does it indicate?
0 alama
(b)
What is the observation that indicates the presence of nitrate ions?
1 alama
(none)
If 25.0 cm3 of 0.1 M NaOH is titrated against a more concentrated HCl solution and 20 cm3 of HCl is used up, what can be inferred about the concentration of the prepared HCl solution?
1 alama
(b)
Plot a graph of the volume (concentration) of sodium thiosulphate against reciprocal of time (1/t). Give an interpretation of the shape of the graph.
0 alama
(c)
Molarity
0 alama
(c)
Name the brown compound formed.
1 alama
((b)(i)
How could the beakers be used in this experiment?
1 alama
(d)
%
0 alama
(e)
S.G.
0 alama
(f)
Required volume (mL)
0 alama
Boresha ili kuona majibu ya mfano.
6.0 alamas
The experiment described below is about the effect of concentration of reactants on the rate of reaction.
(i) Measure 50 cm3 of 0.1 M sodium thiosulphate ($Na_2S_2O_3$) solution in a beaker.
(ii) Draw a cross on a white piece of paper and place the beaker or a conical flask on it.
(iii) Add 50 cm3 of the sulphuric acid and immediately start a stopwatch. The flask should be swirled once or twice before it is placed on the piece of paper.
(iv) Look down vertically on the cross and record the time taken for the cross to disappear.
(v) Repeat procedures (i) – (iv) using 40, 30, 20 and 10 cm3 of sodium thiosulphate. Always top up the solution with distilled water to make 50 cm3 before adding the acid solution.
(vi) Tabulate the data from each experiment in columns indicating the volume of sodium thiosulphate solution (cm3), the volume of water (cm3), time (s), and the rate ($s^{-1}$) as shown in Table 10.
Suggested Mass of $Na_2S_2O_3$ (158 g) Required to Prepare 1 L of 0.1 - 0.5 M
S/N
Concentration (mol/dm3)
Mass of $Na_2S_2O_3$ (g)
1.
0.1
15.8
2.
0.2
31.6
3.
0.3
47.4
4.
0.4
63.2
5.
0.5
79.0
The Experimental Data
Experiment
Vol. of $Na_2S_2O_3$ (cm3)
Vol. of $H_2O$ (cm3)
Time (s)
Rate ($s^{-1}$)
1.
50
0
2.
40
10
3.
30
20
4.
20
30
5.
10
40
(a)
Plot a graph of volume (concentration) of sodium thiosulphate against time. What does the shape of the graph looks like and what does it indicate?
0 alama
(a)
Name the test performed above.
1 alama
(b)
What observation indicates the presence of sulphate ions?
1 alama
(b)
Plot a graph of the volume (concentration) of sodium thiosulphate against reciprocal of time (1/t). Give an interpretation of the shape of the graph.
0 alama
(c)
State why dilute HCl is added before adding BaCl2 solution.
1 alama
(c)
Calculate the average concordant volume of NaOH used.
3 alama
((c)(i)
Show the calculation for preparing 1000 cm3 of 0.5 M sulphuric acid from a 18.38 M stock solution using the dilution law.
3 alama
(d)
Using the data in Table 10, plot a graph of volume of sodium thiosulphate (y-axis) against time (x-axis).
4 alama
(d)
Given that the concentration of the standardized NaOH solution is 0.10 mol/dm³, calculate the concentration of the HCl solution.
3 alama
(e)
Deduce the shape of the graph plotted in (d) and explain what it indicates about the reaction rate.
2 alama
((c)(v)
What safety precautions should be taken when handling concentrated sulphuric acid?
1 alama
(f)
Plot a graph of volume of sodium thiosulphate (y-axis) against the reciprocal of time (x-axis).
4 alama
(g)
Interpret the shape of the graph plotted in (f) and relate it to the order of the reaction.
3 alama
(h)
How would the results change if the concentration of sulphuric acid was doubled? Explain your answer.
2 alama
(i)
What is the role of distilled water in step (v)?
1 alama
(j)
Suggest two possible sources of error in this experiment.
2 alama
Boresha ili kuona majibu ya mfano.
9.10 alamas
The diagram below shows a setup for determining the relative atomic mass of an unknown element in a solution by volumetric analysis.
(a)
Identify the apparatus labelled X and state its function in this experiment.
2 alama
(b)
Name the process represented by this setup.
1 alama
(c)
Outline the steps involved in carrying out this experiment, starting from the preparation of the solution of the unknown element and the standard solution.
5 alama
(d)
Explain how the relative atomic mass of the unknown element can be calculated from the experimental data.
2 alama
Boresha ili kuona majibu ya mfano.
10.10 alamas
The calculations here are based on the volume strength of $H_2O_2$ given on Winchester bottle as assay volume strength (% v/v), For example, 100% v/v.
From the decomposition equation of $H_2O_2$ to produce $O_2$,
From, $2H_2O_2 \rightarrow 2H_2O + O_2$
$2 M H_2O_2 \rightarrow 1 M O_2 = 22.4$ Litres
or $1 M H_2O_2 \rightarrow \frac{1}{2} M O_2 = 11.2$ Litres
$100\% v/v$ is equivalent to $1 M = \frac{100}{22.4} = 4.46$ Molar.
Molarity of stock solution = $\frac{\text{Volume strength}}{11.2}$
Molarity of stock solution = $\frac{100}{11.2} \approx 8.93$ M
For example, to prepare 1 litre of 0.1 M $H_2O_2$ solution,
Using the dilution law $M_c V_c = M_d V_d$
Where,
$M_c$ = molarity of the $H_2O_2$ before the dilution,
$M_d$ = molarity required after the dilution (i.e. 0.1 M),
$V_c$ = volume of $H_2O_2$ to be drawn from winchester bottle before the dilution,
$V_d$ = the resulting volume after the dilution (i.e. 1000 cm3).
$V_c = \frac{M_d \times V_d}{M_c}$
$V_c = \frac{0.1M \times 1000 cm^3}{8.93M} = 11.198 \approx 11.2 cm^3$
The volume of the concentrated $H_2O_2$ that should be diluted to 1000 cm3 = 11.2 cm3.
(a)
Identify the titration method used here and name the primary standard commonly used to standardize the titrant.
2 alama
(none)
Explain the principle and general procedure for identifying cations and anions in a single salt using group separation.
5 alama
(b)
Write down the relevant chemical equations involved in the determination of copper.
4 alama
(c)
If 25.0 cm³ of a copper(II) sulphate solution requires 22.5 cm³ of a 0.10 mol/dm³ sodium thiosulphate solution for complete reaction, calculate the concentration of copper(II) ions in the solution.
4 alama
Boresha ili kuona majibu ya mfano.
Sehemu D
7.0 alamas
The experiment described below is about the effect of concentration of reactants on the rate of reaction.
(i) Measure 50 cm3 of 0.1 M sodium thiosulphate ($Na_2S_2O_3$) solution in a beaker.
(ii) Draw a cross on a white piece of paper and place the beaker or a conical flask on it.
(iii) Add 50 cm3 of the sulphuric acid and immediately start a stopwatch. The flask should be swirled once or twice before it is placed on the piece of paper.
(iv) Look down vertically on the cross and record the time taken for the cross to disappear.
(v) Repeat procedures (i) – (iv) using 40, 30, 20 and 10 cm3 of sodium thiosulphate. Always top up the solution with distilled water to make 50 cm3 before adding the acid solution.
(vi) Tabulate the data from each experiment in columns indicating the volume of sodium thiosulphate solution (cm3), the volume of water (cm3), time (s), and the rate ($s^{-1}$) as shown in Table 10.
Suggested Mass of $Na_2S_2O_3$ (158 g) Required to Prepare 1 L of 0.1 - 0.5 M
S/N
Concentration (mol/dm3)
Mass of $Na_2S_2O_3$ (g)
1.
0.1
15.8
2.
0.2
31.6
3.
0.3
47.4
4.
0.4
63.2
5.
0.5
79.0
The Experimental Data
Experiment
Vol. of $Na_2S_2O_3$ (cm3)
Vol. of $H_2O$ (cm3)
Time (s)
Rate ($s^{-1}$)
1.
50
0
2.
40
10
3.
30
20
4.
20
30
5.
10
40
(a)
Plot a graph of volume (concentration) of sodium thiosulphate against time. What does the shape of the graph looks like and what does it indicate?
0 alama
(b)
Plot a graph of the volume (concentration) of sodium thiosulphate against reciprocal of time (1/t). Give an interpretation of the shape of the graph.
0 alama
(c)
If 0.189 g of $KIO_3$ (Molar mass = 214 g/mol) is used, and it reacts completely to liberate iodine which is then titrated with 25.0 cm³ of $Na_2S_2O_3$ solution, calculate the concentration of the $Na_2S_2O_3$ solution.
4 alama
Boresha ili kuona majibu ya mfano.
8.0 alamas
The experiment described below is about the effect of concentration of reactants on the rate of reaction.
(i) Measure 50 cm3 of 0.1 M sodium thiosulphate ($Na_2S_2O_3$) solution in a beaker.
(ii) Draw a cross on a white piece of paper and place the beaker or a conical flask on it.
(iii) Add 50 cm3 of the sulphuric acid and immediately start a stopwatch. The flask should be swirled once or twice before it is placed on the piece of paper.
(iv) Look down vertically on the cross and record the time taken for the cross to disappear.
(v) Repeat procedures (i) – (iv) using 40, 30, 20 and 10 cm3 of sodium thiosulphate. Always top up the solution with distilled water to make 50 cm3 before adding the acid solution.
(vi) Tabulate the data from each experiment in columns indicating the volume of sodium thiosulphate solution (cm3), the volume of water (cm3), time (s), and the rate ($s^{-1}$) as shown in Table 10.
Suggested Mass of $Na_2S_2O_3$ (158 g) Required to Prepare 1 L of 0.1 - 0.5 M
S/N
Concentration (mol/dm3)
Mass of $Na_2S_2O_3$ (g)
1.
0.1
15.8
2.
0.2
31.6
3.
0.3
47.4
4.
0.4
63.2
5.
0.5
79.0
The Experimental Data
Experiment
Vol. of $Na_2S_2O_3$ (cm3)
Vol. of $H_2O$ (cm3)
Time (s)
Rate ($s^{-1}$)
1.
50
0
2.
40
10
3.
30
20
4.
20
30
5.
10
40
(none)
Outline the procedure for standardizing an acid with a standard base.
4 alama
(a)
Plot a graph of volume (concentration) of sodium thiosulphate against time. What does the shape of the graph looks like and what does it indicate?
0 alama
(i)
Plot a graph of the reaction time (t) against the temperature (T). Interpret the graph.
0 alama
(ii)
Plot a graph of the reciprocal reaction time (1/t) against the temperature (T). Interpret the graph.
0 alama
(b)
Plot a graph of the volume (concentration) of sodium thiosulphate against reciprocal of time (1/t). Give an interpretation of the shape of the graph.
0 alama
(c)
If phenolphthalein is used as the first indicator, which species will it indicate the presence of at its endpoint?
2 alama
(d)
If methyl orange is used as the second indicator, what reaction does its endpoint signify?
2 alama
(e)
How can the volumes of $HCl$ used to reach each endpoint be used to determine the proportions of $NaOH$ and $Na_2CO_3$ in the original mixture?
2 alama
Boresha ili kuona majibu ya mfano.
11.1 alama
Which of the following best describes the storage of chemicals in a laboratory?
A.All chemicals should be stored together in a single cabinet.
B.Flammable liquids should be stored in a well-ventilated area away from ignition sources.
C.Acids and bases can be stored next to each other to save space.
D.Corrosive chemicals should be stored on high shelves to prevent spills.
12.1 alama
What is the primary hazard associated with handling concentrated acids in a laboratory?
A.Inhalation of toxic fumes
B.Skin and eye burns
C.Risk of explosion
D.Decomposition upon heating
13.1 alama
In case of a chemical spill in the laboratory, the immediate first aid action should be:
A.Neutralize the spill with an appropriate substance.
B.Clean up the spill immediately with paper towels.
C.Inform the supervisor and evacuate the area if necessary.
D.Try to contain the spill within the laboratory bench.
14.0 alamas
Table 1 shows the preparation of some common laboratory reagents.
Table 1
S/No.
Name of the Reagent
How to Prepare it
Concentration solution.
14.
Calcium chloride (CaCl .6H O)
Dissolve 55 g of the hexahydrated or 27.8 g of anhydrous to make 1 litre of solution.
0.25 M
15.
Calcium sulphate
Shake 2.04 g of the salt with 1 litre of water, filter and decant the saturated solution after several hours.
0.015 M
16.
Chlorine water
Saturate 250 mL of water with chlorine, the chlorine may be prepared by dropping conc. HCl upon KMnO . Preserve it in a dark coloured bottle.
6.8 g/l
17.
Cobalt nitrate
Dissolve 44 g of the hexahydrate salt or 27.5 of anhydrous to make 1 litre of solution.
0.15 M
18.
Copper sulphate
Dissolve 125 g of the hydrated salt or 80 g of anhydrous salt in 1 litre of water containing 3 mL of the conc. sulphuric acid.
0.5 M
19.
Ferric chloride
Dissolve 135.2 g of FeCl .6H O in water containing 20 mL of the concentrated HCl, dilute to 1 L with water and filter if necessary.
0.5 M
20.
Ferrous sulphate
Dissolve 139 g of ferrous sulphate heptahydrate or 76 g of anhydrous ferrous sulphate in water containing 7 ml of the concentrated sulphuric acid to make 1 L of solution.
0.5 M
21.
Hydrogen sulphide (H S)
H S generated from a Kipps apparatus.
( ~42 g/l)
22.
Iodine solution
Dissolve 12.7 g of iodine in a solution of 20 g of pure KI in 30 mL of water, and dilute it to 1 litre of solution.
0.05 M
23.
Lead acetate
Dissolve 95 g of Pb(C H O ) .3H O to make 1 L water. Add sufficient dilute acetic acid to clear the solution.
0.25 M
24.
Magnesium sulphate
Dissolve 62 g of MgSO .7H O in 1000 mL water.
0.25 M
25.
Methyl orange, indicator
Dissolve 1.0 g of methyl orange in 800 mL of water and then add 200 mL of ethanol.
-
26.
Phenolphthalein indicator solution
Dissolve 5 g in 500 mL ethanol; add 500 mL water with constant stirring.
-
27.
Potassium chromate solution.
Dissolve 49 g of the salt to make 1 litre of solution.
0.25 M
28.
Potassium dichromate
Dissolve 35 g of the salt to make 1 litre of solution.
0.12 M
(a)
10% (w/v) means that there are 10 grams of solute (KI) dissolved in every 100 mL of solution.
1 alama
(i)
For the test of Cu2+ using ammonia solution, explain why the precipitate formed is soluble in excess ammonia.
2 alama
(a)
Calculate the mass of ammonium acetate required to prepare 250 cm³ of a 1.5 M solution.
3 alama
(b)
Calculate the mass of ammonium nitrate required to prepare 500 cm³ of a 0.5 M solution.
2 alama
(b)
For 10% (w/v), 10 g of KI is dissolved in 100 mL of solution.
For 250 mL of solution, mass of KI required = (10 g / 100 mL) * 250 mL = 25 g
2 alama
(ii)
Write the ionic equation for the reaction that occurs when potassium ferrocyanide is added to a solution containing Zn2+ ions.
2 alama
(c)
1. Weigh accurately 25 g of Potassium Iodide (KI).
2. Dissolve the KI in a small amount of distilled water in a beaker.
3. Transfer the solution to a 250 mL volumetric flask.
4. Rinse the beaker with a small amount of distilled water and add the rinsings to the flask.
5. Add distilled water to the mark (250 mL), stopper the flask, and mix thoroughly.
2 alama
(iii)
Describe the expected observation in procedure (b) for the test of Ca2+ if the test solution contains sulfate ions.
2 alama
(c)
If you are asked to prepare 250 cm³ of 0.1 M Barium chloride solution, what mass of Barium chloride is required?
2 alama
(d)
Explain how to prepare 250 cm³ of Aqua Regia solution.
2 alama
(e)
What is the concentration of saturated Ammonium sulphate solution in mol/L?
1 alama