Composition of Substances and Solutions
Formula mass: sum of the atomic masses of the atoms in the chemical formula
The mole is used to count atoms and molecules in samples
One mole: the amount of substance that contains as many atoms, molecules, or other objects, as the number of atoms in 12 grams of isotopically-pure 12C
Avogadro’s number: 6.022 x 10^23
One mole of any atom, ion or molecule contains 6.022 x 1023 of said object
Percentage composition: percentage, by mass, contributed by each element
Derived from experimental data (the percentage composition)
Empirical formulas: give relative number of atoms of each element in a substance
Molecular formulas: give actual number of atoms in a substance
e.g., H2O2 Molecular formula; HO Empirical formula
Solution: a homogeneous mixture of two or more substances
Solvent: the substance present in greatest quantity
Solutes: dissolved in the solvent
Molarity (M) = (moles of solute) / (volume of solution in liters)
ppm = mass of solute/mass of solution x 10^6
ppb = mass of solute/mass of solution x 10^9
( 1 ppm = 1000 ppb)
Formula mass: sum of the atomic masses of the atoms in the chemical formula
The mole is used to count atoms and molecules in samples
One mole: the amount of substance that contains as many atoms, molecules, or other objects, as the number of atoms in 12 grams of isotopically-pure 12C
Avogadro’s number: 6.022 x 10^23
One mole of any atom, ion or molecule contains 6.022 x 1023 of said object
Percentage composition: percentage, by mass, contributed by each element
Derived from experimental data (the percentage composition)
Empirical formulas: give relative number of atoms of each element in a substance
Molecular formulas: give actual number of atoms in a substance
e.g., H2O2 Molecular formula; HO Empirical formula
Solution: a homogeneous mixture of two or more substances
Solvent: the substance present in greatest quantity
Solutes: dissolved in the solvent
Molarity (M) = (moles of solute) / (volume of solution in liters)
ppm = mass of solute/mass of solution x 10^6
ppb = mass of solute/mass of solution x 10^9
( 1 ppm = 1000 ppb)