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MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2
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MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

Dec 24, 2015

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Page 1: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

MOLECULAR AND EMPIRICAL FORMULA OF A

HYDRATE

Section: 6.2

Page 2: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

HYDRATES

• Recall: Formula units (molecules) that have a specific number of water molecules attached

• Ex: MgSO4 • 7H2O

Page 3: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

HYDRATESFORMULA CHEMICAL NAME

CaSO4 • 2H2O

CaCl2 • 2H2O

LiCl2 • 4H2O

MgSO4 • 7H2O

Ba(OH)2 • 8H2O

Na2CO3 • 10H2O

Page 4: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

HYDRATESFORMULA CHEMICAL NAME

CaSO4 • 2H2O Calcium sulphate dihydrate

CaCl2 • 2H2O Calcium chloride dihydrate

LiCl2 • 4H2O Lithium chloride tetrahydrate

MgSO4 • 7H2O Magnesium sulphate heptahydrate

Ba(OH)2 • 8H2O Barium hydroxide octahydrate

Na2CO3 • 10H2O Sodium carbonate decahydrate

Page 5: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

HYDRATES

• A chemist may know the formula of the ionic part of the hydrate but not how many water molecules are present

Page 6: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

RECALL…• When the water molecule is removed

the compound becomes ANHYDROUS

• MgSO4 • 7H2O: – magnesium sulphate heptahydrate

• MgSO4

– anhydrous magnesium sulphate

Page 7: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

MOLAR MASS OF HYDRATE

• The Molar mass of a hydrate INCLUDES the water molecules

• Find the M of CuCl2 • 2H2O

63.55 + 2(35.45) + 2(18.02) = 170.49g/mol

Page 8: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

MOLAR MASS OF HYDRATE

• Find the M of anhydrous CuCl2

63.55 + 2(35.45) = 134.45 g/mol

THERE IS A DIFFERENCE!!! Hydrate weighs more!

Page 9: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

% composition example…

HYDRATE

Page 10: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

A 50.0 g sample of hydrate contains 24.4 g MgSO4. a) Calculate the percent by mass of water in MgSO 4 • x H2O.

Page 11: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

a) Mass percent of water in MgSO4• x H2O

Given: formula MgSO4• x H2O total mass of sample: 50.0 g mass of MgSO4: 24.4 g

Therefore, the mass of water = total mass of sample – mass MgSO4

= 50.0g – 24.4 g = 25.6 g H2O

Page 12: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

Mass percent of water

= mass of water x 100% total mass of sample= 25.6 g x 100% 50.0 g= 51.2 %

Page 13: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

b) Find the value of x in MgSO4 • xH2O

- NEED: # H2O in MgSO4•xH2O- Can calculate M of MgSO4 = 120.38 g/mol - Can calculate moles of MgSO4 and H2O

moles of MgSO4 = mass MgSO4

Molar mass MgSO4

= 24.4 g 120.38 g/mol

= 0.20269 mol MgSO4

RECALL:n = m M

Page 14: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

moles of H2O = mass H2O

Molar mass H2O

WE know Mass of Water from part (a) 25.6 g

= 25.6 g 2(1.01) + 16 g/mol

= 1.42064 mol H2O

RECALL:n = m M

Page 15: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

To find the formula of MgSO4 •xH2O

Use RATIO: * RECALL: To find ratio Identify the lowest mole value and divide both mole values with it to find the ratio*

Mole of MgSO4 = 0.20269 = 1 0.20269

Moles of H2O = 1.42064 = 7 0.20269

1 mol MgSO4 : 7 mol H2O

Therefore the formula is MgSO 4

•7H2O

Page 16: MOLECULAR AND EMPIRICAL FORMULA OF A HYDRATE Section: 6.2.

Homework

Read Section 6.2 Hydrate Problems.