Lab Time
Thursday, January 12, 2012
Tuesday, January 10, 2012
Lab 4C Percent Composition of Unknown Hydrates - By Sally Chen
Objectives
1. To determine the percentage of water in an unknown hydrate.
2. To determine the moles of water present in each mole of this unknown hydrate when given the molar mass of the anhydrous salt.
3. To write an empirical formula of the hydrate.
Supplies
Equipment: lab burner, crucible and lid, crucible tongs, pipe stem triangle, ring stand and ring, centigram or digital balance, lab apron, safety goggles.
Chemical reagents: approximately 5 g of a hydrate, water.
Procedures
1. set up equipments, make sure flame is blue
2. heat empty crucible
3. cool empty crucible
4. measure the mass of crucible
5. fill 1/3 of crucible with hydrate, record mass
6. heat and then cool, record mass
7. reheat & cool, record mass
8. take the lower mass in 6 and 7
9. add water to the content, record changes.
Questions That Might Help You to Understand the Lab Better
1. What did you learn from the lab?
A: 1) we can decide some hydrates' percent composition by heating
2) we cannot decide some hydrates' percent composition because they would decompose before heating is done.
3) Hydrates might have different colors than their anhydrous salts.
4) Not all hydrates would go through a color change during heating.
2.The reason the answer is not accurate:
A: 1) the hydrate decomposes under high temperature (mass of anhydrous salt ↓)
2) the flame is not blue so carbon would accumulate under the crucible (mass of anhydrous salt ↑)
3) experiment errors
4)the crucible does not cool completely before weighing (mass of anhydrous salt ↓)
5) water is not completely driven off (mass of anhydrous salt ↑)
3. How to name the hydrates?
A: Na2CO3 10H2O = sodium carbonate decahydrate
CuSO4 5H2O = copper sulphate pentahydrate
(1 mono, 2 di, 3 tri, 4 tetra, 5 penta, 6 hexa, 7 hepta, 8 octa, 9 nona, 10 deca, 11 hendeka, 12 dodeca)
4. Why heating the crucible first before starting the experiment?
A: to drive off water in the crucible so the experiment would be more accurate.
1. To determine the percentage of water in an unknown hydrate.
2. To determine the moles of water present in each mole of this unknown hydrate when given the molar mass of the anhydrous salt.
3. To write an empirical formula of the hydrate.
Supplies
Equipment: lab burner, crucible and lid, crucible tongs, pipe stem triangle, ring stand and ring, centigram or digital balance, lab apron, safety goggles.
Chemical reagents: approximately 5 g of a hydrate, water.
Procedures
1. set up equipments, make sure flame is blue
2. heat empty crucible
3. cool empty crucible
4. measure the mass of crucible
5. fill 1/3 of crucible with hydrate, record mass
6. heat and then cool, record mass
7. reheat & cool, record mass
8. take the lower mass in 6 and 7
9. add water to the content, record changes.
Questions That Might Help You to Understand the Lab Better
1. What did you learn from the lab?
A: 1) we can decide some hydrates' percent composition by heating
2) we cannot decide some hydrates' percent composition because they would decompose before heating is done.
3) Hydrates might have different colors than their anhydrous salts.
4) Not all hydrates would go through a color change during heating.
2.The reason the answer is not accurate:
A: 1) the hydrate decomposes under high temperature (mass of anhydrous salt ↓)
2) the flame is not blue so carbon would accumulate under the crucible (mass of anhydrous salt ↑)
3) experiment errors
4)the crucible does not cool completely before weighing (mass of anhydrous salt ↓)
5) water is not completely driven off (mass of anhydrous salt ↑)
3. How to name the hydrates?
A: Na2CO3 10H2O = sodium carbonate decahydrate
CuSO4 5H2O = copper sulphate pentahydrate
(1 mono, 2 di, 3 tri, 4 tetra, 5 penta, 6 hexa, 7 hepta, 8 octa, 9 nona, 10 deca, 11 hendeka, 12 dodeca)
4. Why heating the crucible first before starting the experiment?
A: to drive off water in the crucible so the experiment would be more accurate.
Sunday, January 8, 2012
Standard Temperature and Pressure--By Tina Zhao
Standard Temperature and Pressure:
-Molar volume of a Gas at STP. Gases expand and contract (change volume) with changes in temperature and pressure. We have a Standard cordition to compare volume of gases called STP.
-In chemistry, IUPAC established standard temperature and pressure (informally abbreviated as STP) as a temperature of 273.15 K (0 °C, 32 °F) and an absolute pressure of 100 kPa (14.504 psi, 0.986 atm), An unofficial, but commonly used standard is standard ambient temperature and pressure (SATP) as a temperature of 298.15 K (25 °C, 77 °F) and an absolute pressure of 100 kPa (14.504 psi, 0.986 atm).
- At STP 1 mole of gas occupies 22.4L
Thus we can create the conversion factors:
22.4L of gas/ 1 mole of gas OR 1 mole of gas/ 22.4L of gas
Example: calculate the volume occupied by 3.4 g of ammonia at STP.
First step: Molar mass of ammonia(NH3)
(1x14)+(3x1)=17g/mol
Step two: Moles of ammonia
3,4g of NH3/ 17g= 0.20 moles of NH4
Step three: Molar volume
0.2 moles x 22.4L= 4.5 L
(volume occupied by 3,4 g of ammonia at STP=4.5L)
http://www.gaston.k12.nc.us/schools/highland/faculty/blpadgett/Course%20Outline%20and%20Syllabus/CH%2011%20Molar%20Volume%20Worksheet.pdf if you want do more example!!!
-Molar volume of a Gas at STP. Gases expand and contract (change volume) with changes in temperature and pressure. We have a Standard cordition to compare volume of gases called STP.
-In chemistry, IUPAC established standard temperature and pressure (informally abbreviated as STP) as a temperature of 273.15 K (0 °C, 32 °F) and an absolute pressure of 100 kPa (14.504 psi, 0.986 atm), An unofficial, but commonly used standard is standard ambient temperature and pressure (SATP) as a temperature of 298.15 K (25 °C, 77 °F) and an absolute pressure of 100 kPa (14.504 psi, 0.986 atm).
- At STP 1 mole of gas occupies 22.4L
Thus we can create the conversion factors:
22.4L of gas/ 1 mole of gas OR 1 mole of gas/ 22.4L of gas
Example: calculate the volume occupied by 3.4 g of ammonia at STP.
First step: Molar mass of ammonia(NH3)
(1x14)+(3x1)=17g/mol
Step two: Moles of ammonia
3,4g of NH3/ 17g= 0.20 moles of NH4
Step three: Molar volume
0.2 moles x 22.4L= 4.5 L
(volume occupied by 3,4 g of ammonia at STP=4.5L)
http://www.gaston.k12.nc.us/schools/highland/faculty/blpadgett/Course%20Outline%20and%20Syllabus/CH%2011%20Molar%20Volume%20Worksheet.pdf if you want do more example!!!
Thursday, January 5, 2012
Molar Concentration -- by Ria Park
Before Start - Rewview
- Solute is the chemical that has the smaller quantity.
- Solvent is the chemical that has the larger quantity.
Molar Concentration(Molarity)
- is the number of moles of solute in a specific mount of litre of a solution.
- We use "M" or "mole/L" to denote molarity.
Molarity = moles of solute(mol) / volume of solution(L)
e.g. If there is 3.40 moles of NaCl in 1.2 litres of solution, what is the molar concentration?
Molarity = moles of solute(mol) / volume of solution(L)
= 3.40 moles of NaCl / 1.2L
= 2.8333333...
= 2.8 mol/L NaCl or 2.8 M
e.g. Calculate the molarity of a solution that has 0.738 moles NaOH in 2.40L of solution.
Molarity = mol / L M of NaOH = 0.738 mol NaOH / 2.40 L
= 0.3075
= 0.308 M NaOH or 0.308 mol/L NaOH
e.g. How many moles of KCl are contained in 1.5 L of 2.00 mol/L KCl?
moles KCl = molarity × volume
= 2.00 mol/L × 1.5L
= 3.0 moles KCl
e.g. What volume of 0.34 mol/L NaCl do we must take to obtain 0.021 mole of NaCl?
volume = moles / molarity
= 0.34 mole NaCl / 0.021 mol/L NaCl
= 16 L
And here is very interesting video for fun learnig.
http://www.youtube.com/watch?v=WsQk8C098zA
- Solute is the chemical that has the smaller quantity.
- Solvent is the chemical that has the larger quantity.
Molar Concentration(Molarity)
- is the number of moles of solute in a specific mount of litre of a solution.
- We use "M" or "mole/L" to denote molarity.
Molarity = moles of solute(mol) / volume of solution(L)
e.g. If there is 3.40 moles of NaCl in 1.2 litres of solution, what is the molar concentration?
Molarity = moles of solute(mol) / volume of solution(L)
= 3.40 moles of NaCl / 1.2L
= 2.8333333...
= 2.8 mol/L NaCl or 2.8 M
e.g. Calculate the molarity of a solution that has 0.738 moles NaOH in 2.40L of solution.
Molarity = mol / L M of NaOH = 0.738 mol NaOH / 2.40 L
= 0.3075
= 0.308 M NaOH or 0.308 mol/L NaOH
e.g. How many moles of KCl are contained in 1.5 L of 2.00 mol/L KCl?
moles KCl = molarity × volume
= 2.00 mol/L × 1.5L
= 3.0 moles KCl
e.g. What volume of 0.34 mol/L NaCl do we must take to obtain 0.021 mole of NaCl?
volume = moles / molarity
= 0.34 mole NaCl / 0.021 mol/L NaCl
= 16 L
And here is very interesting video for fun learnig.
http://www.youtube.com/watch?v=WsQk8C098zA
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