I also found a link which could help us all to know more about the types of chemical reactions
http://www.youtube.com/watch?v=tE4668aarck
Monday, February 7, 2011
Types of Chemical Reactions
I also found a link which could help us all to know more about the types of chemical reactions
http://www.youtube.com/watch?v=tE4668aarck
Tuesday, January 25, 2011
Balancing Equation
Today we are gong to talk about how to make the number of atoms of each kind on the relevant side equal to those on the product side
Here are some rules :
1. balance the atoms which only occur in one molecule on each side
2. balance the whole group
3. dont jump all over an equation
4. in an elemental form
Examples~
1. Al + CuCl2 ----> Al2Cl3 + Cu
step 1 : (4)Al + (3)CuCl2 -----> (2)Al2Cl3 + (3)Cu
step 2 : u should check if the molecules on both sides are equal
(4Al , 3Cu, 6Cl = 4Al , 3Cu, 6Cl)
2. KOH + H3PO4 -----> K3PO4 + H2O
step 1 : (3)KOH + H3PO4 ----> K3PO4 + (3)H2O
step 2 : checking
(3K, 7O, 6H, 1P = 3K, 7O, 6H, 1P)
Here are some rules :
1. balance the atoms which only occur in one molecule on each side
2. balance the whole group
3. dont jump all over an equation
4. in an elemental form
Examples~
1. Al + CuCl2 ----> Al2Cl3 + Cu
step 1 : (4)Al + (3)CuCl2 -----> (2)Al2Cl3 + (3)Cu
step 2 : u should check if the molecules on both sides are equal
(4Al , 3Cu, 6Cl = 4Al , 3Cu, 6Cl)
2. KOH + H3PO4 -----> K3PO4 + H2O
step 1 : (3)KOH + H3PO4 ----> K3PO4 + (3)H2O
step 2 : checking
(3K, 7O, 6H, 1P = 3K, 7O, 6H, 1P)
Monday, January 10, 2011
Diluting Solutions to Prepare Workable Solutions
We should make solutions of any concentrration from a more concentrated source.
We can make it by a simple equation.
M1V1 = M2V2
Example 1 :
Theres a 40.0mL of 0.400M NaOH solution is diluted to a final volume of 200.0mL, calculate the new concentration.
Let x be the new concentration.
0.400 x 40.0/1000.0 = 100/1000x
x= 6.25
The new concentration is 6.25M
Example 2 :
A 0.700M solution is concentrated by evaporation to a reduced final volume of 200.0mL and a molarity of 1.65M. Calculate the original volume.
Let V be the original volume.
0.700V = 200/1000 x 1.65
V = 2.33
The original volume was 2.33L
The original volume was 2.33L
Wednesday, January 5, 2011
Molar Concentration/ "Molarity" Conversation
Molarity is a number of moles of solute in 1 L of solution. We use "M" to denote molar concentration and ift has the units of "moles/L"
E.g. A 100 M solution is MORE concentrated than a 5 M solution.
Formula: Molarity = moles of solute(mol)/ volume of solution(L) aka M = mol/L
We also learned how to calculate the volume. We will learn more about this topic next class
E.g. A 100 M solution is MORE concentrated than a 5 M solution.
Formula: Molarity = moles of solute(mol)/ volume of solution(L) aka M = mol/L
We also learned how to calculate the volume. We will learn more about this topic next class
Thursday, December 9, 2010
Formula of a Hydrate
And after i did some research in the internet, I found out there is this another form of Cobalt (II) chloride which is called Cobalt (II) chloride hexahydrate. Which looks like this
So after doing this lab I think I am much prepared for the quiz which will be next wednesday.
Saturday, December 4, 2010
Calculate The Empirical Formula Of Organic Compound~
An organic compound : any substance that contain CARBON
When we do the calculation, we can write a balanced chemical equation for the burning of CxHy
(CxHy + zO2 -----> xCO2 + y/2H2O)
1. We should calculate the moles of CO2 and H2O produced
2. Find the mole of C and H in the CO2 and H2O
3. Find the ratio of C : H
4. Multiply the ratios to get a whole number
For example...
1. What is the empirical formula of a compound that burns to produce 8.45g of CO2 and 1.73g of H2O?
mol of CO2 = 8.45/44 = 0.19 mol of C in CO2 = 0.19C
mol of H2O = 1.73/18 = 0.10 mol of H in H2O = 0.2H
Mole ratio = 1:1
Therefore,the empirical formula is CH
2. When 6.28g of an organic compound is burned,10.22g of CO2 and 5.18g of H2O is produced?What is the empirical formula?
mole of CO2 = 10.22/44 = 0.232 mol of C in CO2 = 0.232C
mole of H2O = 5.18/18 = 0.288 mol of H in H2O = 0.576H
Check Mass :
0.232C x 10.22g = 2.371g
0.576H x 5.18g = 2.98g
6.28g - 2.371g - 2.98g = 0.929g -----> Oxygen
0.929/16 = 0.058mol Oxygen
Mole ratio = 0.232 : 0.576 : 0.058
= 4 : 10 : 1
Therefore,the empirical formula is C4H10O
When we do the calculation, we can write a balanced chemical equation for the burning of CxHy
(CxHy + zO2 -----> xCO2 + y/2H2O)
1. We should calculate the moles of CO2 and H2O produced
2. Find the mole of C and H in the CO2 and H2O
3. Find the ratio of C : H
4. Multiply the ratios to get a whole number
For example...
1. What is the empirical formula of a compound that burns to produce 8.45g of CO2 and 1.73g of H2O?
mol of CO2 = 8.45/44 = 0.19 mol of C in CO2 = 0.19C
mol of H2O = 1.73/18 = 0.10 mol of H in H2O = 0.2H
Mole ratio = 1:1
Therefore,the empirical formula is CH
2. When 6.28g of an organic compound is burned,10.22g of CO2 and 5.18g of H2O is produced?What is the empirical formula?
mole of CO2 = 10.22/44 = 0.232 mol of C in CO2 = 0.232C
mole of H2O = 5.18/18 = 0.288 mol of H in H2O = 0.576H
Check Mass :
0.232C x 10.22g = 2.371g
0.576H x 5.18g = 2.98g
6.28g - 2.371g - 2.98g = 0.929g -----> Oxygen
0.929/16 = 0.058mol Oxygen
Mole ratio = 0.232 : 0.576 : 0.058
= 4 : 10 : 1
Therefore,the empirical formula is C4H10O
Wednesday, December 1, 2010
Empirical formulas and Molecular formulas
Empirical formula: it gives the lowest term ratio of atoms (or moles) in the formula. *All ionic compounds are empirical formulas*
Ex: C3H6 (propene) ---> molecular formula
CH2 ----> empirical formula
Molecular formula: it is a multiple of the empirical formula and shows the actual number of atoms that combine to form a molecule
Ex. A molecule has an empirical formula of C4H10 and a molar mass of 29 g/mol, what is the molecular formula
Ans: C2H5
Ex: C3H6 (propene) ---> molecular formula
CH2 ----> empirical formula
Molecular formula: it is a multiple of the empirical formula and shows the actual number of atoms that combine to form a molecule
Ex. A molecule has an empirical formula of C4H10 and a molar mass of 29 g/mol, what is the molecular formula
Ans: C2H5
Subscribe to:
Posts (Atom)