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Published byRalf Montgomery Modified over 9 years ago
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Avogadro’s Number 6.02 X 10 23
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1 Mole 6.02 X 10 23
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0.5 Mole 3.01 X 10 23
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0.25 Mole 1.50 X 10 23
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2.0 Mole 12.04 X 10 23 Or 1.204 X 10 24
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1.0 Mole of any gas at STP 22.4 Liters
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STP Standard Temperature = 0 C Standard Pressure = 1 atm
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0.5 mole of any gas 11.2 Liters
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2.0 mole of any gas 44.8 Liters
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3.0 mole of any gas 67.2 Liters
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0.25 mole of any gas 5.6 Liters
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Gram Atomic Mass Mass of 1 mole of an element.
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Formula Mass Sum of the masses of the elements in the compound
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Formula Mass of H 2 O 2 X H = 2 X 1.0 = 2.0 1 X O = 1 X 16.0 = 16.0 Sum = 18.0
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Formula Mass of NH 3 3 X H = 3 X 1.0 = 3.0 1 X N = 1 X 14.0 = 14.0 Sum = 17.0
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Formula Mass of CO 2 1 X C = 1 X 12.0 = 12.0 2 X O = 2 X 16.0 = 32.0 Sum = 44.0
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Count up the atoms in (NH 4 ) 2 SO 4 For Paren: Sub Inside X Sub outside N: 2S: 1 H: 8O: 4
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Count up the atoms in 2Mg 3 (PO 4 ) 2 For Paren: Sub Inside X Sub outside Coefficients X subs in formula Mg: 6P: 4O: 16
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# of Moles # of Grams # of Particles # of Liters (gas) X 6.02 X 10 23 X Formula Mass X 22.4 L/mole by 6.02 X 10 23 by formula mass by 22.4
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Percent Part X 100% Whole
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Percent H in H 2 O Part X 100% = 2 X 100% Whole 18
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Percent O in H 2 O Part X 100% = 16 X 100% Whole 18
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Empirical Formula smallest whole number ratio of the elements in a compound
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Molecular Formula Gives exact composition of molecule
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Covalent Compound Formula contains all nonmetals
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Ionic Compound Formula contains metal plus nonmetal
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CuSO 45H 2 O Formula of a hydrated salt. means “is associated with.” H 2 O molecules are stuffed in the empty spaces.
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Formula mass of CuSO 45H 2 O Mass of CuSO 4 plus mass of 5 water molecules. 249.6 grams/mole
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Percent H 2 O in CuSO 4 5H 2 O Part X 100% = 90 X 100% Whole249.6
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Metals All elements to the left of the staircase except H
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Nonmetals All elements to the right of the staircase plus H
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Binary Compound Compound made from 2 elements
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Which formulas are empirical? H 2 OH 2 O 2 CH 4 C 2 H 6 C 6 H 12 O 6 KClP 4 O 10 CaF 2
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Given empirical formula & Formula Mass, find Molecular Formula 1)Find empirical mass 2)Divide formula mass/empirical mass 3)Multiply subscripts in empirical formula by answer in step 2
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Empirical formula = CH & Formula Mass = 78, find Molecular Formula 1)Empirical mass = 13 2)Divide formula mass/empirical mass = 78/13 = 6 3)Multiply subscripts: C 6 H 6
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12 grams of hydrated salt is heated. After heating the mass is 8.0 grams. What is the percent salt & the percent H 2 O? 1)Mass of H 2 O = 12 – 8 = 4 g 2)Percent H 2 O = 4/12 X 100% 3)Percent salt = 8/12 X 100%
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He 1 atom of He or 1 mole of He 1 atom per molecule
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O2O2 1 molecule of O 2 or 1 mole of O 2 2 atoms per molecule
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O3O3 1 molecule of O 3 or 1 mole of O 3 3 atoms per molecule
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