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Percent composition and empirical formulas No matter how great and destructive your problems may seem now, remember, you've probably only seen the tip.

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Presentation on theme: "Percent composition and empirical formulas No matter how great and destructive your problems may seem now, remember, you've probably only seen the tip."— Presentation transcript:

1 Percent composition and empirical formulas No matter how great and destructive your problems may seem now, remember, you've probably only seen the tip of them

2 An example. You could claim that NaCl is half sodium and half chlorine—one of each.

3 An example. You could claim that NaCl is half sodium and half chlorine—one of each. Chlorine atoms are heavier than sodium atoms.

4 An example. You could claim that NaCl is half sodium and half chlorine—one of each. Chlorine atoms are heavier than sodium atoms. By mass: Na=22.99g/mol Cl=35.45g/mol

5 An example. You could claim that NaCl is half sodium and half chlorine—one of each. Chlorine atoms are heavier than sodium atoms. By mass: %Na=22.99g/58.44 g x 100% %Cl=35.45g/58.44 g x 100%

6 An example. You could claim that NaCl is half sodium and half chlorine—one of each. Chlorine atoms are heavier than sodium atoms. By mass: %Na=22.99g/58.44 g x 100% %Cl=35.45g/58.44 g x 100% FM of NaCl !

7 An example. You could claim that NaCl is half sodium and half chlorine—one of each. Chlorine atoms are heavier than sodium atoms. By mass: %Na=22.99g/58.44 g x 100%=39.34% and %Cl=35.45g/58.44 g x 100%=60.66%

8 Definition % composition of a compound: % A=mass A in the compound x 100% mass of the compound

9 PS All of the %’s add up to 100% The %’s are constant, no matter how much of the substance! (AKA: the law of definite proportions)

10 Try it. What is the percent composition of CaBr 2 ?

11 Try it. What is the percent composition of CaBr 2 ? (FM=199.88g/mol)

12 Try it. What is the percent composition of CaBr 2 ? (FM=199.88g/mol) %Ca=40.08g/199.88 g x 100% and %Br=2 x 79.90g/199.88 g x 100%

13 Try it. What is the percent composition of CaBr 2 ? (FM=199.88g/mol) %Ca=40.08g/199.88 g x 100%=20.05% and %Br=2 x 79.90g/199.88 g x 100%=79.95%

14 Practice ? %comp of: 1)CaO 2)Na 3 N 3)Al 2 (SO 4 ) 3 4)NaNO 3 5)NaNO 2

15 Practice ? %comp of: 1)CaO71.47%Ca28.53%O 2)Na 3 N 83.12%Na16.88%N 3)Al 2 (SO 4 ) 3 15.77%Al28.11%S56.12%O 4)NaNO 3 27.05%Na16.48%N56.47%O 5)NaNO 2 33.32%Na20.30%N46.38%O

16 So what? Iron (II) oxide is 77.73% iron. Iron (III) oxide is 69.94% iron. An iron oxide that contains 16.09 g of iron and 6.91 g of oxygen has to be…

17 So what? Iron (II) oxide is 77.73% iron. Iron (III) oxide is 69.94% iron. An iron oxide that contains 16.09 g of iron and 6.91 g of oxygen has to be… Uhh… 16.09/(16.09 +6.91) x 100%=…

18 So what? Iron (II) oxide is 77.73% iron. Iron (III) oxide is 69.94% iron. An iron oxide that contains 16.09 g of iron and 6.91 g of oxygen has to be… Iron (III) oxide

19 On the other hand… A sample contains 8.39 g Ti and 5.61 g O. What is the formula of this compound?

20 On the other hand… A sample contains 8.39 g Ti and 5.61 g O. What is the formula of this compound? 8.39 g Ti 5.61 g O

21 On the other hand… A sample contains 8.39 g Ti and 5.61 g O. What is the formula of this compound? 8.39 g Ti x 1mol Ti/47.90 g 5.61 g O x 1mol O/16.00 g

22 On the other hand… A sample contains 8.39 g Ti and 5.61 g O. What is the formula of this compound? 8.39 g Ti x 1mol Ti/47.90 g=.175 mol Ti 5.61 g O x 1mol O/16.00 g=.350 mol O Ti.175 O.350

23 On the other hand… A sample contains 8.39 g Ti and 5.61 g O. What is the formula of this compound? 8.39 g Ti x 1mol Ti/47.90 g=.175 mol Ti 5.61 g O x 1mol O/16.00 g=.350 mol O Ti.175 O.350  Ti.175/.175 O.350/.175

24 On the other hand… A sample contains 8.39 g Ti and 5.61 g O. What is the formula of this compound? 8.39 g Ti x 1mol Ti/47.90 g=.175 mol Ti 5.61 g O x 1mol O/16.00 g=.350 mol O Ti.175 O.350  Ti.175/.175 O.350/.175  TiO 2

25 Try it. A sample contains 2.6366 g C, 0.4425 g H, and 3.5122 g O. What is the empirical formula of this compound?

26 Try it. A sample contains 2.6366 g C, 0.4425 g H, and 3.5122 g O. What is the empirical formula of this compound? CH 2 O

27 Try it. A sample contains 35.378g C, 5.938 g H, and 31.418 g O. What is the formula of this compound?

28 There are two things to watch out for: 1)What if the smallest number is not 1? 2)What if the simplest whole number ratio is smaller than the molecule?

29 1) What if the smallest number is not 1? A sample contains 1.15 g Na, 1.60 g S, and 1.20 g O.

30 1) What if the smallest number is not 1? A sample contains 1.15 g Na, 1.60 g S, and 1.20 g O. 1.15 g Na/22.99g/mol 1.60 g S /32.06 g/mol 1.20 g O/16 g/mol

31 1) What if the smallest number is not 1? A sample contains 1.15 g Na, 1.60 g S, and 1.20 g O. 1.15 g Na/22.99g/mol=.0500 mol Na 1.60 g S /32.06 g/mol=.0500 mol S 1.20 g O/16 g/mol=.0750 mol O

32 1) What if the smallest number is not 1? A sample contains 1.15 g Na, 1.60 g S, and 1.20 g O. 1.15 g Na/22.99g/mol=.0500 mol Na 1.60 g S /32.06 g/mol=.0500 mol S 1.20 g O/16 g/mol=.0750 mol O  Na.05 S.05 O.075

33 1) What if the smallest number is not 1? A sample contains 1.15 g Na, 1.60 g S, and 1.20 g O. 1.15 g Na/22.99g/mol=.0500 mol Na 1.60 g S /32.06 g/mol=.0500 mol S 1.20 g O/16 g/mol=.0750 mol O  Na.05 S.05 O.075  NaSO 1.5

34 1) What if the smallest number is not 1? A sample contains 1.15 g Na, 1.60 g S, and 1.20 g O. 1.15 g Na/22.99g/mol=.0500 mol Na 1.60 g S /32.06 g/mol=.0500 mol S 1.20 g O/16 g/mol=.0750 mol O  Na.05 S.05 O.075  NaSO 1.5 Don’t try to round the decimal away!

35 1) What if the smallest number is not 1? A sample contains 1.15 g Na, 1.60 g S, and 1.20 g O. 1.15 g Na/22.99g/mol=.0500 mol Na 1.60 g S /32.06 g/mol=.0500 mol S 1.20 g O/16 g/mol=.0750 mol O  Na.05 S.05 O.075  NaSO 1.5  Na 2 S 2 O 3

36 Al.17 O.255 C.89 H 1.18 C 1.58 H 4.22 O 1.58 C 1.90 H 2.38 Cl 2.38

37 Al.17 O.255  AlO 1.5 C.89 H 1.18  CH 1.33 C 1.58 H 4.22 O 1.58  CH 2.67 O C.190 H 2.38 Cl 2.38  CH 1.25 Cl 1.25

38 Al.17 O.255  AlO 1.5  Al 2 O 3 C.89 H 1.18  CH 1.33  C 3 H 4 C 1.58 H 4.22 O 1.58  CH 2.67 O  C 3 H 8 O 3 C.190 H 2.38 Cl 2.38  CH 1.25 Cl 1.25  C 4 H 5 Cl 5

39 Try it. A sample contains 2.6366 g C, 0.4425 g H, and 3.5122 g O. What is the empirical formula of this compound? CH 2 O If we know that the FM of the compound is about 60g/mol, what is the molecular formula? FM(CH 2 O)=30g/mol

40 Try it. A sample contains 2.6366 g C, 0.4425 g H, and 3.5122 g O. What is the empirical formula of this compound? CH 2 O If we know that the FM of the compound is about 60g/mol, what is the molecular formula? FM(CH 2 O)=30g/mol x 2=60 g/mol CH 2 O x 2= C 2 H 4 O 2

41 Try it. A sample contains 2.6366 g C, 0.4425 g H, and 3.5122 g O. What is the empirical formula of this compound? CH 2 O If we know that the FM of the compound is about 60g/mol, what is the molecular formula? C 2 H 4 O 2

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