USING ENGLISH TO CALCULATE

STOICHIOMETRY

1.    Understanding Stoichiometry

Stoichiometry comes from two Greek syllables Stoicheion meaning "element" and Metron which means "measurement". Stoichiometry is a subject in chemistry involving the linkage of reactants and products in a chemical reaction to determine the quantity of each reacting agent. Simply stoichiometry is a subject in chemistry that studies the quantity of matter in a chemical reaction

2.    The laws governing stoichiometry

Chemistry is a part of natural science that studies matter that includes the composition, nature, and change of matter and energy that accompanies material changes. Careful research on reagents and reaction products has spawned basic chemical laws that show a quantitative or so-called stoichiometric relationship. The basic chemical laws are the law of conservation of mass, the law of fixed comparison and the law of multiple comparisons. The basic laws of chemistry are our foundation in studying and developing the next chemistry

a.    The law of mass conservation

Using the laws of physics is like the law of conservation of mass, which holds that the mass of the reactant is equal to the mass of the product, Stoichiometry is used to gather information about the amount of various elements used in a chemical reaction

b.   Comparative law remains

This law states that the chemical compound (substance consisting of 2 (two) or more elements) always contains the same proportion of an element (compound with one atom type) with mass

c.    Law of multiple comparison

This law is one of the basic laws of stoichiometry, aside from the law of fixed comparison. Sometimes it is also called Dalton's law. It is said that, if 2 (two) elements constitute more than one compound between them, then the mass ratio of a second element which joins the fixed mass over the first element of both will have a ratio of a small sum of the whole

3.    Mass Molar (Mr)

The mass of one mole of substance is called the molar mass (relative molecular mass). The magnitude of the material molar mass is the relative atomic mass or the relative molecular mass of a substance expressed in units of grams per mole. The mass of a substance is the multiplication of its mole mass (g / mol) with the mol of the substance (n). Thus the mole relationship of a substance with its mass can be expressed as follows

Molar mass = mass: mol

Mass = mol x Mr / Ar (molar mass)

4.    Molar Volume (Vm)

The volume of one mole of a substance in a gas form is called the molar volume, denoted by Vm. Avogadro in his experiments concluded that 1 L of oxygen gas at 0 ° C and 1 atm pressure has a mass of 1.4286 g Then, according to Avogadro's law it can be concluded:

1 mol of gas O₂ = 22.4 L

In accordance with Avogadro's law stating that at the same temperature and pressure, the same volume of gas contains the same number of molecules or the number of moles of each gas volume the same. Under the law, the volume of 1 mole of each gas in the standard state (temperature 0 ° C and pressure 1 m) is as follows:

Volume gas in standard state = 22.4 L

Problems example :

What is the volume of CO₂ gas whose mass is 22 g (Ar: C = 12, O = 16) when measured at 1 atm pressure?

Answer:

Mr. CO₂ = 44

5.    Gas Volume in Non-Standard State

The calculation of gas volume is not in the standard state (non-STP) used two approaches as follows:

a.    The ideal gas equation

Assuming that the gas to be measured is ideal, the equations that connect the number of moles (n) of gas, pressure, temperature, and volume are:

The ideal gas law: P. V = n. R. T

Where:

P = pressure (atmospheric unit, atm)

V = volume (liters, L)

n = number of moles of gas (mol unit)

R = gas constant (0.08205 L atm / mol K)

T = absolute temperature (° C + 273 K)

b.    With gas conversion at the same temperature and pressure

According to Avogadro's law, the ratio of gases having the same number of moles has the same volume. Mathematically can be expressed as follows:

V1 / V2 = n1 / n2

Where:

N1 = mol of gas 1

V1 = gas volume 1

N2 = mol gas 2

V2 = gas volume 2

6.    Molarity (M)

The amount of substances present in a solution can be determined by using the concentration of the solution expressed in molarity (M). Molarity states the number of moles of substances in 1 L of solution. Mathematically stated as follows :

M = massa/mr x 1000/V

Where:

M = molarity (unit M)

Mass = in units g

Mr. = molar mass (unit g / mol)

V = volume (mL unit)

7.    Empirical Formulas and Molecular Formulas

The empirical formula is the simplest integer ratio of the number of moles of each element in a compound. The molecular formula represents the actual number of moles of each element in 1 mole of the compound. The molecular formula can be identical to the empirical formula or an integer multiple of the empirical formula. For example, phosphoric acid (H3PO4) has a molecular formula and an identical empirical formula. Glucose has a molecular formula C6H12O6 which is a multiple of 6 times the empirical formula, CH2O

Molecular formula = (Empirical formula) n

Mr. Molecular formula = n x (Mr. Empirical Formula

N = integers

problems example :

A compound comprises 60% carbon, 5% hydrogen, and the remainder is nitrogen. Mr. compound it = 80 (Ar: C = 12; H = 1; N = 14). Determine the empirical formula and the molecular formula of the compound!

Answer:

Percentage of nitrogen = 100% - (60% + 5%) = 35%.

Suppose the mass of the compound = 100 g

Then mass C: H: N = 60: 5: 35

Comparison of mol C: mol H: mol N = 5: 5: 2,5 = 2: 2: 1

Then the empirical formula = (C₂H₂N) _n. (Mr. empirical formula) n = Mr. molecular formula

(C₂H₂N) _n = 80

(24 + 2 + 14) _n = 80

40n = 80

N = 2

Thus, the molecular formula of the compound = (C₂H₂N)₂ = C₄H₄N₂