Empirical Formula.

Slides:



Advertisements
Similar presentations
Chapter 11 Empirical and Molecular Formulas
Advertisements

Copyright Sautter EMPIRICAL FORMULAE An empirical formula is the simplest formula for a compound. For example, H 2 O 2 can be reduced to a simpler.
Calculate the Empirical Formula for a compound with the following composition: 46.16% carbon; 53.84% nitrogen 1)Change % to grams (if needed) 2)Convert.
Empirical and Molecular Formulas Empirical and Molecular Formulas An empirical formula shows the simplest whole number ratio of atoms of each element.
Section 5: Empirical and Molecular Formulas
Percent Composition, Empirical, and Molecular Formulas
Chemistry Notes Empirical & Molecular Formulas. Empirical Formula The empirical formula gives you the lowest, whole number ratio of elements in the compound.
Empirical: based on observation and experiment
Homework Check Find the percent composition of the following: 1. A compound with g of Na and 77.4 g of O 2. Ammonium Nitrate (NH 4 NO 3 ) 3. Ca(C.
Determining Chemical Formulas Experimentally % composition, empirical and molecular formula.
Empirical and Molecular Formulas
Percent Composition, Empirical Formulas, Molecular Formulas
Percent Composition of a :Compound Percent Composition of a : Sample Empirical Formulas Molecular Formulas.
Molecular Formula vs Empirical Formula. Different compounds can have the same empirical formula but different molecular formulas. Empirical Formula is.
  I can determine the percent composition for each element in a compound or sample.
Warm-Up: To be turned in 3.6 mol NaNO 3 = ______ g g MgCl 2 = ______ mol.
Chapter 11 Notes #2 Percent Composition  Is the percent by mass of each element in a compound.  Can be determined by dividing the molar mass of each.
1 Empirical Formulas Honors Chemistry. 2 Formulas The empirical formula for C 3 H 15 N 3 is CH 5 N. The empirical formula for C 3 H 15 N 3 is CH 5 N.
MOLECULAR FORMULAS (here you will be using empirical to help you determine molecular formulas)
1 Percent Composition: Identifies the elements present in a compound as a mass percent of the total compound mass. The mass percent is obtained by dividing.
Percent Composition Like all percents: Part x 100 % whole Find the mass of each component, divide by the total mass.
Empirical and Molecular Formulas For compounds: How to calculate Empirical Formula How to calculate Molecular Formula.
Unit 6: Chemical Quantities
Percent Composition, Empirical and Molecular Formulas.
Unit Empirical and Molecular Formulas. Empirical Formulas Consists of the symbols for the elements combined in a compound, with subscripts showing.
Empirical Formula vs. Molecular Formula Empirical formula: the formula for a compound with the smallest whole-number mole ratio of the elements Molecular.
Ch. 11 The Mole The Mol House The Mol House Atoms in a molecule molecules molgrams Molar Mass Avogadro’s number Chemical formula.
Empirical Formulas. Gives the lowest whole-number ratio of the elements in a compound. Example: Hydrogen Peroxide (H 2 O 2 ) Empirical Formula- HO.
Empirical & Molecular Formulas. Percent Composition Def – the percent by mass of each element in a compound Percent by mass = mass of element x 100 mass.
Percent Composition and Empirical Formula. Percent Composition General Strategy Convert whole number ratio (moles) to mass percent Formula  Mass Percent.
Empirical & Molecular Formulas. Percent Composition Determine the elements present in a compound and their percent by mass. A 100g sample of a new compound.
7.3 Percent composition and chemical formulas. Percent composition The relative amount of mass of each element in a compound, expressed in %
Molecular Formulas. An empirical formula shows the lowest whole-number ratio of the elements in a compound, but may not be the actual formula for the.
Formulas Ethane Formula C 2 H 6 Why don’t we simplify it? CH 3 StructureH | H ---- C ---- C ---- H | H.
Section 6.3 Formulas of Compounds 1.Recognize and explain the differences between empirical and molecular formulas 2.Calculate the empirical formula of.
% Composition, Empirical Formulas, & Molecular Formulas Chapter 9 sections 3 & 4.
Percent Composition What is the % mass composition (in grams) of the green markers compared to the all of the markers? % green markers = grams of green.
Empirical and Molecular Formulas Topic #20. Empirical and Molecular Formulas Empirical --The lowest whole number ratio of elements in a compound. Molecular.
Empirical Formula: Smallest ratio of atoms of all elements in a compound Molecular Formula: Actual numbers of atoms of each element in a compound Determined.
6.7 Empirical Formula and 6.8 Molecular Formulas
Empirical Formula.
EMPIRICAL FORMULA VS. MOLECULAR FORMULA .
Empirical and Molecular Formulas
III. Formula Calculations (p )
Percent Composition & Empirical and Molecular Formulas
The Mole Formula Calculations.
Bellwork What is the mass of one mole of hydrogen peroxide, H2O2?
Empirical Formula Molecular Formula
Section 9.3—Analysis of a Chemical Formula
EMPIRICAL FORMULA The empirical formula represents the smallest ratio of atoms present in a compound. The molecular formula gives the total number of atoms.
III. Formula Calculations (p )
Percent Composition, Empirical and Molecular Formulas
Ch. 8 – The Mole Empirical formula.
Percent Composition Empirical Formula Molecular Formula
7.5 – NOTES Molecular Formulas
Empirical and Molecular Formulas
Empirical Formulas Unit 5.
% Composition, Empirical Formulas, & Molecular Formulas
% Composition, Empirical Formulas, & Molecular Formulas
Empirical & Molecular Formulas
Empirical and Molecular Formulas
Ch. 7: Chemical Formulas and Compounds
Empirical Formula of a Compound
Calculating Empirical and Molecular Formulas
Empirical Formulas Molecular Formulas.
7.3 – NOTES Molecular Formulas
Calculating Empirical and Molecular Formulas
Empirical and Molecular Formulae
Molecular Formula.
Reading Guide 10.3b Empirical Formulas Molecular Formulas
Presentation transcript:

Empirical Formula

No, you can reduce it to HO Empirical Formula: Lowest whole # ratio H2O2 (hydrogen peroxide) is it a empirical Formula? No, you can reduce it to HO

H2O2 is the molecular formula Molecular formula shows the way the molecule is actually found in nature.

How do we write empirical formulas??? 1. Take the % compositions and convert the % to grams.

11.1 % H 88.9% O changes to 11.1 g H 88.9 g O

Take the % compositions and convert the % to grams. Convert grams to moles

11.1 g H x 1 mole H = 11.1 moles 1.0 g H 88.9 g O x 1 mole O = 5.5 moles 16.0 g O

Take the % compositions and convert the % to grams. Convert grams to moles Divide by the smallest # of moles

11.1 moles H / 5.5= 2 5.5 moles O / 5.5 =1

Take the % compositions and convert the % to grams. Convert grams to moles Divide by the smallest # of moles Plug the whole #’s into the empirical formula

11.1 moles H / 5.5= 2 5.5 moles O / 5.5 =1 H2O1

Take the % compositions and convert the % to grams. Convert grams to moles Divide by the smallest # of moles Plug the whole #’s into the empirical formula If you do not have whole #’s after dividing you must multiply through to make them all whole #’s

Examples 1.5 x 2 = 3 1.3 x 3 = 4 1.25 x 4 = 5 1.75 x 4 = 7

Examples Mn1O1.5 2x (Mn1O1.5)= Mn2O3

Molecular Mass Vs. Empirical Mass

Is found experimentally Molecular Mass Is found experimentally

Is found using the molar mass from the periodic table. Empirical Mass Is found using the molar mass from the periodic table.

Molecular Mass Vs. Empirical Mass If they are the same GREAT the Molecular Formula and Empirical Formula are the same

Molecular Mass Vs. Empirical Mass If they are not the same you must divide the Molecular mass by the Empirical mass to see how many time greater it is.

Molecular mass = 78g/mol Empirical mass of CH =13g/mol Molecular Mass Vs. Empirical Mass Molecular mass = 78g/mol Empirical mass of CH =13g/mol 78/13 =6

Molecular Mass Vs. Empirical Mass Since the molecular mass is 6 times greater then the empirical mass the formula is also 6 times greater.

Molecular Mass Vs. Empirical Mass 6 x (CH) C6H6 Molecular Formula