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VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
We do our best to make these slides comprehensive and up-to-date, however there may be errors. We'd appreciate it if you pointed these out to us! 1
Unit 3, Area of Study 1: Chemical Analysis
Gravimetric Analysis
Watch this lesson online: https://edrolo.com.au/vce/subjects/chemistry/vce-chemistry/aos-1-chemical-analysis/chemical-analysis-gravimetric-analysis/outcome-1/#watch
CHEMISTRY
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
We do our best to make these slides comprehensive and up-to-date, however there may be errors. We'd appreciate it if you pointed these out to us! 2
Outcome 1
On completion of this unit the student should be able to evaluate the suitability of techniques and instruments used in chemical analyses. Key Knowledge � Gravimetric analysis � the application of chemical equations to (volumetric and) gravimetric analyses
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
We do our best to make these slides comprehensive and up-to-date, however there may be errors. We'd appreciate it if you pointed these out to us! 3
Gravimetric analysis
• This form of quantitative analysis involves @ind the mass of a part of the sample and relating it back to the sample, often as a percentage by mass
• The part of the sample we are interested in may be the water in the product, or perhaps we might be focussing on a particular ion that is present.
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
We do our best to make these slides comprehensive and up-to-date, however there may be errors. We'd appreciate it if you pointed these out to us! 4
Measuring water content • Many solids have a high proportion of water. • Dehydration removes the water and decreases the mass
• This may be heating at just above 100 °C • Mass loss = mass of water originally present
• % water content = m(water) × 100 m(sample)
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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Weigh the sample
Heat the sample in an oven just above 100 °C
Allow the sample to cool in a desiccator
Reweigh the sample
This cycle is repeated until the sample assumes a constant mass
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
We do our best to make these slides comprehensive and up-to-date, however there may be errors. We'd appreciate it if you pointed these out to us! 6
Finding the composition of a mixture
1. Dissolve the mixture in water 2. Add an ionic solution which will
form a precipitate with the ion that is required (eg SO42-‐).
3. This new solid is then @iltered out, dried and weighed.
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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The most common precipitates
Element you wish to analyse
Substance that is added to create precipitate
Formula of precipitate
Chlorine Silver nitrate AgCl
Bromine Silver nitrate AgBr
Sulfur Barium chloride BaSO4
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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Application of gravimetric analysis � Gravimetric analysis is used in the food industry to determine the amount of salt in products.
� When an AgNO3 solution is added to the dissolved food, chloride ions (present as NaCl) are precipitated out as AgCl.
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
We do our best to make these slides comprehensive and up-to-date, however there may be errors. We'd appreciate it if you pointed these out to us! 9
Calculations Find n(AgCl) using: n(AgCl) = Then:
n(AgCl) = n(Cl-‐) = n(NaCl) � Convert n(NaCl) to m(NaCl) using m(NaCl) = n(NaCl) × M(NaCl) � %(NaCl) = m(NaCl) × 100 m(food) 1
m(AgCl)M(AgCl)
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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Experiment Analysis of Lawn food
Lawn food contains many nutrients required by plants such as sulfate ions, SO42-‐, nitrate ions, NO3-‐ and phosphate ions, PO43-‐. Using gravimetric analysis to ;ind the amount of sulfate ions in a sample of lawn food 1. Dissolve lawn food in water 2. Add barium chloride solution 3. Sulfate ions precipitate out as barium
sulfate BaCl2(aq) + SO42-‐ (aq) → BaSO4(s) + 2Cl-‐(aq)
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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4. Filter, wash and dry the BaSO4 to obtain a pure sample of precipitate.
6. During washing stages @iltrate is tested for
presence of left over chloride ions by adding silver nitrate. AgNO3(aq)+ Cl-‐ → AgCl(s) + NO3-‐(aq)
• If ions are in the @iltrate, then they have
probably also stuck to the solid and its mass will be too high.
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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6. Barium sulfate is dried, then weighed. 8. Using M(BaSO4), n(BaSO4) is calculated so
n(SO42-‐) can be deduced. n(SO42-‐) = n(BaSO4)
8. m(SO42-‐) = n(SO42-‐) × M(SO42-‐) 9. m(S) = n(SO42-‐) × M(S)
10. % S = m(S) 100
m(sample) 1×
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Sample exam question An 8.64g sample of rock was thought to be made up of CaCO3 which reacted with HCl according to: 2HCl(aq) + CaCO3(s) → CaCl2(aq) + H2O(l) + CO2(g) and 1.55g of insoluble SiO2. (a) Calculate the expected percentage of CaCO3 in the rock sample (b) The dissolved calcium ions were precipitated out as CaC2O4.H2O which was collected, washed and dried. It was converted to CaO (M = 56.1gmol-‐1) and 3.87g was obtained. Calculate the % CaCO3 in the rock sample. (signi@icant @igures)
(VCAA June 2007 Q3)
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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(a) m(CaCO3) = 8.64 – 1.55 = 7.09g %(CaCO3) = b) n(CaO) = mol n(Ca2+) = 0.06898 mol = n(CaCO3) m(CaCO3) = 0.06898 × 100.1 = 6.905g %(CaCO3) = (3 sig @igs)
7.09 100 82.1%8.64 1
× =
3.87 0.0689856.1
=
6.905 100 79.9%8.64 1
× =
Answers
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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Xylose is a compound that has five carbon atoms in each molecule and contains 40% carbon by mass. What is the molar mass of xylose?
QUESTION 1
A. 30
B. 67
C. 150
D. It cannot be determined without further information.
(VCAA Q3 June 2008)
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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Xylose is a compound that has five carbon atoms in each molecule and contains 40% carbon by mass. What is the molar mass of xylose?
QUESTION 1 (ANSWER)
A. 30
B. 67
C. 150
D. It cannot be determined without further information.
Alternative C is the correct answer M(C) = 12.0 gmol-1 1 mol xylose molecules contains 5 mol C atoms (5 C atoms per molecule, so 5 mol of C atoms per 1 mol of molecules) m(5 mol C atoms) = 60.0 g 40% of xylose is carbon, so 40% of M(xylose) = 60.0 This can also be written as 0.40 × M(xylose) = 60.0 M(xylose) = = 150.0 gmol-1
60.00.40 (VCAA Q3 June 2008)
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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The amount of calcium carbonate (:molar mass = 100.1 g ) in the ore dolomite can be determined by gravimetric analysis. The dolomite sample is dissolved in acid and the calcium ions () present are precipitated as calcium oxalate ( :molar mass = 128.1 g ). The calcium oxalate is foltered, dried and strongly heated to form calcium oxide (CaO); molar mass = 56.1 g ). In one analysis the mass of dolomite used was 3.72 g. The mass of calcium oxide formed was found to be 1.24 g. The percentage of calcium carbonate in the dolomite sample is closest to
QUESTION 2
A. 26.9
B. 33.3
C. 56.0
D. 59.5 (VCAA Q8 June 2005)
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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The amount of calcium carbonate (:molar mass = 100.1 g ) in the ore dolomite can be determined by gravimetric analysis. The dolomite sample is dissolved in acid and the calcium ions () present are precipitated as calcium oxalate ( :molar mass = 128.1 g ). The calcium oxalate is foltered, dried and strongly heated to form calcium oxide (CaO); molar mass = 56.1 g ). In one analysis the mass of dolomite used was 3.72 g. The mass of calcium oxide formed was found to be 1.24 g. The percentage of calcium carbonate in the dolomite sample is closest to
QUESTION 2 (ANSWER)
A. 26.9
B. 33.3
C. 56.0
D. 59.5
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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(VCAA Q8 June 2005)
Alternative D is the correct answer n(CaO) = n(Ca2+) = n(CaO) = n(CaCO3) = 0.0221 m(CaCO3) in dolomite = 0.0221 × 100.1 = 2.21g %(CaCO3) =
2.21 100 59.5%3.72 1
× =
2.21 100 59.5%3.72 1
× =
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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When 2.54 g of solid iodine reacts with excess chlorine and the unreacted chlorine is evaporated, 4.67 g of a yellow product remains. The empirical formula of the product is
A. ICl2
B. ICl3
C. ICl4
D. ICl5
QUESTION 3
(VCAA Q4 June 2007)
VCE Chemisrtry Unit 3 AOS 1 © Ms Lanna Derry & Edrolo 2014
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When 2.54 g of solid iodine reacts with excess chlorine and the unreacted chlorine is evaporated, 4.67 g of a yellow product remains. The empirical formula of the product is
A. ICl2
B. ICl3
C. ICl4
D. ICl5
QUESTION 3 (ANSWER)
The empirical formula is ICl3 so the correct answer is B The yellow product is only made up of chlorine and iodine In 4.67g of the yellow product, 2.54g is iodine and (4.67-2.54) 2.13g is chlorine Empirical formula: I : Cl 2.54g : 2.13g 0.0200 : 0.0600
1 : 3
2.54 2.13 : 126.9 35.5 (VCAA Q4 June 2007)
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