Unit 6: Chemical Quantities. Understanding The Mole

Similar documents
Chapter 10 Chemical Quantities

Chapter 10. How you measure how much? Moles. Representative particles. Conversion factors. Chemical Quantities or

What is a Mole? An Animal or What?

6.02 X Lesson # 9.1: The Mole. Unit 9: Math of Chemistry Chemical Quantities Part I. Yes, you will need a calculator for this chapter!

Measuring matter 11.1

What is a Representative Particle

6.02 x 1023 CHAPTER 10. Mole. Avogadro s Number. Chemical Quantities The Mole: A Measurement of Matter Matter is measured in one of three ways:

Unit 6 Chemical Analysis. Chapter 8

CHAPTER 11. The Mole. Mole. One mole of = 6.02 x 10 = 6.02 x 10 CaCl = 6.02 x x 10. Representative Particle. molecules, or formula units

Chapter 5. Mole Concept. Table of Contents

Chapter 3. Mass Relationships in Chemical Reactions

Atoms, Molecules, and the Mole

A TAKAMUL INTERNATIONAL SCHOOL CH.10 THE MOLE PREPARED BY MR. FAHAD AL-JARAH

Notes: The Mole. What is the ratio of calcium ions to chloride ions in calcium chloride? Ca 2+ : Cl -

General Chemistry. Chapter 3. Mass Relationships in Chemical Reactions CHEM 101 (3+1+0) Dr. Mohamed El-Newehy 10/12/2017

Chemistry 101 Chapter 8 Chemical Composition

Topic 7: The Mole Concept Relating Mass to Numbers of Atoms

THE MOLE (a counting unit)

Average Atomic Mass. A new unit called the atomic mass unit (amu) was developed to deal with the very small units of mass for particles like the atom.

Examples: Al2(SO4)3 Al 2 x 27.0 = S 3 x 32.1 = O 12 x 16.0 = NiSO3 6H2O Ni 1 x 58.7 = S 1 x 32.1 = O 3 x 16.0 = H2O 6 x 18.0 =

Mass Relationships in Chemical Reactions

Do Now. Agenda Welcome back! The beginning of ALL THE MATH! Homework PBJ procedure Pages 1-3 of HW packet

Test Review Unit 3_1_Amount of substance Mole, molar mass and Avogadro s number test

CHAPTER 9 AVOGADRO S NUMBER

B. stoichiometry using balanced chemical equations to obtain info. C. mole-to-r.p. and r.p.-to-mole example problems:

Name Date Class CHEMICAL QUANTITIES. SECTION 10.1 THE MOLE: A MEASUREMENT OF MATTER (pages )

6 atomic # C symbol Carbon name of element atomic mass. o Examples: # 1 mol C = g # 1 mol O = g # 1 mol H = 1.

How do you measure matter?

Chapter 10 CHEMICAL QUANTITIES The MOLE

Using the Mole to Calculate % Composition, Empirical Formulas and Molecular Formulas

Mass Relationships in Chemical Reactions

The Mole. Chemical Quantities

Slide 1. Slide 2 Mass in amus. Slide 3 MOLES! MOLES! MOLES! Joe s 2 nd Rule of Chemistry

Name Date Class CHEMICAL QUANTITIES. SECTION 10.1 THE MOLE: A MEASUREMENT OF MATTER (pages )

Stoichiometry. Chapter 3

Chemical Calculations: The Mole concept and Chemical Formula. Law of Definite Proportions (John Dalton) Chapter 9

Unit 5 COUNTING PARTICLES

Mass Relationships in Chemical Reactions

1. Mole Definition & Background

Chapter 3. Stoichiometry

Atoms, Ions and Molecules Calculations

ب 3 18 قسم الكيمياء مصطفي عيد

Composition and formulae. Of moles and men

UNIT 5: STOICHIOMETRY

Chapter 8. The Mole Concept

Chemistry Day 48. Thursday, January 24 th Monday, January 28 th, 2019

Q: How long would it take to spend a mole of $1 coins if they were being spent at a rate of 1 billion per second? A:

UNIT 5: STOICHIOMETRY

Chemistry Chapter 3. Stoichiometry. (three sections for this chapter)

Chapter 6 Chemical Composition

Chapter 9. Chemical Calculations and Chemical Formulas

Chapter 3 Stoichiometry. Ratios of combination

Molar Calculations - Lecture Notes for Chapter 6. Lecture Notes Chapter Introduction

Name Class Date = + 1 S atom 32.1 amu +

Chapter 10 Chemical Quantities

Molar Mass. The total of the atomic masses of all the atoms in a molecule:

Lecture Notes Chapter 6

Many common quantities have names that are used to describe them: Six of something are a half-dozen, and twelve are a dozen.

7 Quantitative Composition of Compounds. Chapter Outline. The Mole. Slide 1. Slide 2. Slide 3

Chem RG Chapter Packet 7 Mole & Chemical Composition. Assign Section # Name Ch 07 Test Review (turn in separately for graded points

UNIT 4: THE MOLE & AVOGADRO

7.1 Describing Reactions. Burning is a chemical change. When a substance undergoes a chemical change, a chemical reaction is said to take place.

Finding Formulas. using mass information about a compound to find its formula


Chapter 3 Mass Relationships in Chemical Reactions

Atomic Number. Mass Number. Counting Subatomic Particles

Chapter 10 Chemical Quantities

Determining Chemical Formulas

Solutions to the Extra Problems for Chapter 8

9/18/2013. Scientists represent atoms by using different colored circles, called a model.

6/28/11. Avogadro s Number and the Mole. The Mole. The Mole. The Mole (mol)

The Mole 6.02 X 10 23

Ch. 6 Chemical Composition - Notetaker (Key)

Copyright McGraw-Hill Education. Permission required for reproduction or display Percent Composition

1. Mole Definition & Background

CHEMISTRY MOLES PACKET PAGE 1. Chemistry Moles Packet

The Mole 6.02 X 10 23

Molar Conversions & Calculations

The Mole. Relative Atomic Mass Ar

1. Mole Definition & Background

Unit 4: The MOLE & STOICHIOMETRY. Essential Question: What is a MOLE and why do we use it to measure chemical things PRECISELY?

6.02 X STOICHIOMETRY. The Mole. The Mole. Just How Big is a Mole? - the study of the quantitative aspects of chemical reactions.

Part 01 - Notes: The Mole and Its Calculations

The Mole. Chapter 7 Homework. Page 175 # s 5 & 6 Page 179 # s 7 & X 10 23

Mass Relationships in Chemical Reactions

1 mole = (Avogadro s Number)

Unit 6: Mole Assignment Packet Period:

IGCSE Double Award Extended Coordinated Science

23 carbon atoms The number is known as Avogadro s d Number.

Chapter 3. Stoichiometry: Calculations with Chemical Formulas and Equations

1/7/14. Measuring Matter. How can you convert among the count, mass, and volume of something? Apples can be measured in three different ways.

Unit 1 review. Chapter 1, chapter , 2.4

1 The Mole 6.02 X 10 23

Unit III: Quantitative Composition of Compounds

7 Quan'ta've Composi'on of Compounds. Chapter Outline. The Mole. The Mole. The Mole. The Mole. Advanced Chemistry

Chapter 8. Chemical Composition

Chemical Equations. Law of Conservation of Mass. Anatomy of a Chemical Equation CH4(g) + 2O2(g) Chapter 3

Worksheet 1: REPRESENTATIVE PARTICLES

Quantitative aspects of chemical change. sdfgsfgfgsgf Grade 10 Physical Science CAPS 2016

Chemists need a convenient method for counting accurately the number of atoms, molecules, or formula units in a sample of a substance.

Transcription:

Unit 6: Chemical Quantities Understanding The Mole 1

How do We Typically Measure Matter? You can measure mass, or volume, or you can count pieces. We measure mass in grams. We measure volume in liters. 2

3 How do We Measure Matter? Problem: How can you count something as small as an atom or molecule? Scientists discovered that they needed a method for counting accurately the numbers of atoms, molecules, formula units in a sample Came up with a counting unit called a MOLE Amedeo Avogadro, Italian Scientist (relationship between mole & number of particles)

What is the Mole? We re not talking about this 4 kind of mole!

Mole (abbreviated: mol) It is an amount, defined as the number of carbon atoms in exactly 12 grams of carbon-12. 1 mole = 6.02 x 10 23 of the representative particles of a sample Treat it like a very large dozen 6.02 x 10 23 is called: 5 Avogadro s Number.

Similar Words for an Amount: Pair : 1 pair of socks = 2 socks Dozen: 1 dozen eggs = 12 eggs Gross: 1 gross of pencils = 144 pencils Ream: 1 ream of paper 6 = 500 sheets of paper

What are Representative Particles? The smallest pieces of a substance: 1) For a molecular compound: it is the molecule. 2) For an ionic compound: it is the formula unit (made of ions). 3) For an element: it is the atom. 7» Remember the 7 diatomic elements? (made of molecules)

8

Bell Ringer What is a mole? What is Avogadro s number? 9

Types of questions How many oxygen atoms in the following? CaCO 3 Al 2 (SO 4 ) 3 3 atoms of oxygen 12 (3 x 4) atoms of oxygen How many ions in the following? CaCl 2 NaOH 3 total ions (1 Ca 2+ ion and 2 Cl 1- ions) 2 total ions (1 Na 1+ ion and 1 OH 1- ion) 10 Al 2 (SO 4 ) 3 5 total ions (2 Al 3+ + 3 SO 4 2- ions)

Practice Problems:(round to 3 sig.figs) How many molecules of CO 2 are in 4.56 moles of CO 2? 2.75 x 10 24 molecules How many moles of water is 5.87 x 10 22 molecules? 0.0975 mol (or 9.75 x 10-2 ) How many moles is 7.78 x 10 24 formula units of MgCl 2? 12.9 moles 11

12 Measuring Moles Remember relative atomic mass? - The amu was one twelfth the mass of a carbon-12 atom. Mole = number atoms in 12 g of C the decimal number on the periodic table is also the mass of 1 mole of those atoms in grams, Called Gram Atomic Mass

Molar Mass Molar mass is the generic term for the mass of one mole of any substance (expressed in grams/mole) The same as: 1) Gram Molecular Mass (for molecules) 2) Gram Formula Mass (ionic compounds) 3) Gram Atomic Mass (for elements) 13 molar mass is just a much broader term than these other specific masses

14 What about Compounds? in 1 mole of H 2 O molecules there are two moles of H atoms and 1 mole of O atoms To find the mass of one mole of a compound: 1) determine the number of moles of the elements present 2)Multiply the number times their mass (from the periodic table) 3)add them up for the total mass

Calculating Formula Mass Calculate the formula mass of magnesium carbonate, MgCO 3. 15 24.3 g + 12 g + 3 x (16.00 g) = 84.3 g Thus,84.3 g is the formula mass for MgCO 3.

Examples How much would 2.34 moles of carbon weigh? 28.1 grams C How many moles of magnesium is 24.31 g of Mg? 1 mol Mg How many atoms of lithium is 1.00 g of Li? 8.72 x 10 22 atoms Li How much would 3.45 x 10 22 atoms 16 of U weigh? 13.6 grams U

Bell Ringer Calculate the molar mass of the following and tell what type it is: Na 2 S N 2 O 4 C Ca(NO 3 ) 2 17

Bell Ringer Calculate the molar mass of the following and tell what type it is: Na 2 S = 78 g/mol gram formula mass N 2 O 4 C Ca(NO 3 ) 2 = 92 g/mol gram molecular mass = 12 g/mol gram atomic mass = 164 g/mol gram formula mass 18

19 Since Molar Mass is The number of grams in 1 mole of atoms, ions, or molecules, We can make conversion factors from these. - To change between grams of a compound and moles of a compound.

For example How many moles is 5.69 g of NaOH? (Solution on next slides) 20

For example How many moles is 5.69 g of NaOH? 5. 69 g 21

For example How many moles is 5.69 g of NaOH? 5. 69 g mole g We need to change 5.69 grams NaOH to moles 22

For example How many moles is 5.69 g of NaOH? 5. 69 g mole g We need to change 5.69 grams NaOH to moles 1mole Na = 23 g 1 mole of H = 1 g 1 mol O = 16 g 23

For example 24 How many moles is 5.69 g of NaOH? 5. 69 g mole g We need to change 5.69 grams NaOH to moles 1mole Na = 23 g 1 mole of H = 1 g 1 mole NaOH = 40 g 1 mol O = 16 g

For example 25 How many moles is 5.69 g of NaOH? 5. 69 g 1 mole 40.00 g We need to change 5.69 grams NaOH to moles 1mole Na = 23 g 1 mole of H = 1 g 1 mole NaOH = 40 g 1 mol O = 16 g

For example 26 How many moles is 5.69 g of NaOH? 5. 69 g 1 mole 40.00 g = 0.142 mol NaOH We need to change 5.69 grams NaOH to moles 1mole Na = 23 g 1 mole of H = 1 g 1 mole NaOH = 40 g 1 mol O = 16 g

Bell Ringer What is the molar mass of H 2 O? What is the molar mass of NaCl? How many grams are their in 10 mole of H 2 O? 27

28 The Mole-Volume Relationship Many of the chemicals we deal with are in the physical state as: gases. - They are difficult to weigh(or find mass). But, we may still need to know how many moles of gas we have. Two things effect the volume of a gas: a) Temperature and b) Pressure We need to compare all gases at the same temperature and pressure.

29 Standard Temperature and Pressure 0ºC and 1 atm pressure - is abbreviated STP At STP, 1 mole of any gas occupies a volume of 22.4 L - Called the Molar Volume 1 mole of any gas at STP = 22.4 L

Practice Examples What is the volume of 4.59 mole of CO 2 gas at STP? = 103 L How many moles is 5.67 L of O 2 at STP? = 0.253 mol What is the volume of 8.8 g of CH 4 gas at STP? = 12.3 L 30

31 Density of a gas D = m / V (density = mass/volume) - for a gas the units will be: g / L We can determine the density of any gas at STP if we know its formula. To find the density we need: 1) mass and 2) volume. If you assume you have 1 mole, then the mass = molar mass (from periodic table) And, at STP the volume is 22.4 L.

Practice Examples (D=m/V) Find the density of CO 2 at STP. D = 44g/22.4L = 1.96 g/l Find the density of CH 4 at STP. D = 16g/22.4L = 0.714 g/l 32

33 Another way: If given the density, we can find the molar mass of the gas. Again, pretend you have 1 mole at STP, so V = 22.4 L. modify: D = m/v to show: m = D x V m will be the mass of 1 mole, since you have 22.4 L of the stuff. What is the molar mass of a gas with a density of 1.964 g/l? = 44.0 g/mol How about a density of 2.86 g/l? = 64.0 g/mol

Summary These four items are all equal: a) 1 mole b) Molar Mass (in grams/mol) c) 6.02 x 10 23 representative particles (atoms, molecules, or formula units) d) 22.4 L of gas at STP Thus, we can make conversion 34 factors from these 4 values!

Calculating Percent Composition of a Compound Like all percent problems: part whole x 100 % = percent 1) Find the mass of each of the components (the elements), 2) Next, divide by the total mass 35 of the compound; then x 100

Example Calculate the percent composition of a compound that is made of 29.0 grams of Ag with 4.30 grams of S. 36 29.0 g Ag 33.3 g total 4.30 g S 33.3 g total X 100 = 87.1 % Ag X 100 = 12.9 % S Total = 100 %

Bell Ringer Calculate the percent composition of C 2 H 4? 85.7% C, 14.3 % H 37

38 Formulas Empirical Formula: the lowest whole number ratio of atoms in a compound. Molecular Formula: the true number of atoms of each element in the formula of a compound. Example: molecular formula for benzene is C 6 H 6 (note that everything is divisible by 6) Therefore, the empirical formula = CH (the lowest whole number ratio)

Formulas Formulas for ionic compounds are ALWAYS empirical (the lowest whole number ratio = cannot be reduced). Ex: NaCl MgCl 2 Al 2 (SO 4 ) 3 Formulas for molecular compounds MIGHT be empirical or not Molecular: H 2 O C 6 H 12 O 6 C 12 H 22 O 11 39 Empirical: H 2 O CH 2 O C 12 H 22 O 11

Calculating Empirical Just find the lowest whole number ratio C 6 H 12 O 6 CH 4 N = CH 2 O = this is already the lowest ratio. A formula is not just the ratio of atoms, it is also the ratio of moles. Subscripts are equal to the # of atoms or the # of moles 40

41 Calculating Empirical We can get a ratio of moles from the percent composition. 1) Assume you have a 100 g sample - the percentage become grams (75.1% = 75.1grams) 2) Convert grams to moles. 3) Find lowest whole number ratio by dividing each number of moles by the smallest value.

Example Calculate the empirical formula of a compound composed of 38.67 % C, 16.22 % H, and 45.11 %N. Assume 100 g sample, so 38.67 g C x 1mol C = 3.22 mole C 12.0 g C 16.22 g H x 1mol H = 16.22 mole H 1.0 g H 45.11 g N x 1mol N = 3.22 mole N 14.0 g N 42 Now divide each value by the smallest value

Example The ratio is 3.22 mol C = 1 mol C 3.22 mol N 1 mol N The ratio is 16.22 mol H = 5 mol H 3.22 mol N 1 mol N = C 1 H 5 N 1 which is = CH 5 N 43 A compound is 43.64 % P and 56.36 % O. What is the empirical formula? = P 2 O 5 Caffeine is 49.48% C, 5.15% H, 28.87% N and 16.49% O. What is its empirical formula? = C 4 H 5 N 2 O

Empirical to Molecular Since the empirical formula is the lowest ratio, the actual molecule would weigh more. By a whole number multiple. Divide the actual molar mass by the empirical formula mass you get a whole number to increase each coefficient in the empirical formula Caffeine has a molar mass of 194 44g. What is its molecular formula? = C 8 H 10 N 4 O 2