Chemistry 100(02) Fall 2013

Chemistry 100(02) Fall 2013 Instructor: Dr. UpaliSiriwardane e-mail: upali@coes.latech.edu Office: CTH 311 Phone257-4941 Office Hours: M,W, 8:00-9:30 & 11:30-12:30 a.m Tu,Th,F8:00 - 10:00 a.m. Or by appointment Test Dates: CHEM 100, Fall 2012 LA TECH September 30, 2013 (Test 1): Chapter 1 & 2 October 21, 2013 (Test 2): Chapter 3 & 4 November 13, 2013 (Test 3) Chapter 5 & 6 November 14, 2013 (Make-up test) comprehensive: Chapters 1-6 9:30-10:45:15 AM, CTH 328

REQUIRED: Textbook:Principles of Chemistry: A Molecular Approach, 2nd Edition-Nivaldo J. Tro - Pearson Prentice Hall and also purchase the Mastering Chemistry Group Homework, Slides and Exam review guides and sample exam questions are available online: http://moodle.latech.edu/ and follow the course information links. OPTIONAL: Study Guide: Chemistry: A Molecular Approach, 2nd Edition-Nivaldo J. Tro 2nd Edition Student Solutions Manual: Chemistry: A Molecular Approach, 2nd Edition-Nivaldo J. Tro2nd Text Book & Resources

Chapter 3. Molecules, Compounds, and Chemical Equations 3.1 Hydrogen, Oxygen, and Water……………………………. 78 3.2 Chemical Bonds…………………………………………… 80 3.3 Representing Compounds: Chemical Formulas and Molecular Models.. 82 3.4 An Atomic-Level View of Elements and Compounds…………….. 84 3.5 Ionic Compounds: Formulas and Names…………………… 87 3.6 Molecular Compounds: Formulas and Names……………………… 93 3.7 Formula Mass and the Mole Concept for Compounds………… 97 3.8 Composition of Compounds…………………………….. 100 3.9 Determining a Chemical Formula from Experimental Data……… 105 3.10 Writing and Balancing Chemical Equations…………………… 110 3.11 Organic Compounds………………………. 114

Chapter 3. KEY CONCEPTS • Using Mass Percent Composition as a Conversion Factor (3.8) • Using Chemical Formulas as Conversion Factors (3.8) • Obtaining an Empirical Formula from Experimental Data (3.9) • Calculating a Molecular Formula from an Empirical Formula and Molar Mass (3.9) • Obtaining an Empirical Formula from Combustion Analysis (3.9) • Balancing Chemical Equations (3.10) • Classifying Substances as Atomic Elements, Molecular Elements, Molecular Compounds, or Ionic Compounds (3.4) • Writing Formulas for Ionic Compounds (3.5) • Naming Simple Ionic Compounds (3.5) • Naming Ionic Compounds Containing Polyatomic Ions (3.5) • Writing Molecular and Empirical Formulas (3.3) • Naming Molecular Compounds (3.6) • Naming Molecular Compounds (3.6) • Naming Acids (3.6) • Calculating Formula Mass (3.7) • Using Formula Mass to Count Molecules by Weighing (3.7) • Calculating Mass Percent Composition (3.8)

1) Glucose has a molecular formula of C6H12O6 (M.W. 180.16 g/mol). a. How many grams of C are available in 1 mole of glucose? b. How many grams of H are available in 1 mole of glucose? c. How many grams of O are available in 1 mole of glucose?

Percentage Composition description of a compound based on the percent relative amounts of each element in the compound

% Element Composition in Compounds from Formula n x Gram Atomic weight % mass = --------------------------------------- x 100 formula weight (GMW, GFW) n = subscript of the element in the formula

2) What are the mass % of carbon and hydrogen in carbon dioxide CO2? (CO2; M.W. = 44.01 g/mole) % C: % O: CHEM 100, Fall 2012 LA TECH 2-8

Example: What is the percent composition of carbon in chloroform , CHCl3, a substance once used as an anesthetic? = 1(gaw)C + 1(gaw)H + 3(gaw)Cl MM =(12.01 + 1.00797 + 3 x 35.453) amu = 119.377amu 1 x (12.011) %C = x 100 = 10.061% C 119.377 1(1.00797) = x 100 = 0.844359% H 119.377 3(35.453) = x 100 = 89.095% Cl 119.377 %H %C

3) Bicarbonate of soda (sodium hydrogen carbonate) has ionic formula: NaHCO3. Find the mass percentages (mass %) of Na, H, C, and O in sodium hydrogen carbonate. Molar mass: %Na: % C: % O: %H

Example: What is the percent composition of chloroform, CHCl3, a substance once used as an anesthetic? %C = 10.061% C %H = 0.844% H %Cl = 89.095% Cl 100.00

Mass percent of element in C6H12O6 Molar Mass = 180.16 g/mol 6 x 12 %C = x 100 = 40.00% C 180.16 12 x 1.01 % H = x 100 = 6.73% H 180.16 6 x 16.00 %O = x 100 = 53.29% O 180.16 Total =100.02%

4) NH3 (M.W. 17.03 g/mole) and NH4NO3 (F.W. 80.05 g/mole) used as nitrogen fertilizer. Which one will provide more nitrogen for the same weight? NH3 NH4NO3

What is Empirical Formula? Simple whole number ratio of each atom expressed in the subscript of the formula. Molecular Formula = C6H12O6 of glucose Empirical Formula = CH2O Empirical formula is calculated from % composition

How do you get Empirical Formula from % composition and vice versa?

Example: The burning of fossil fuels in air produces a brown-colored gas, a major air pollutant, that contains 2.34 g of N and 5.34 g of O. What is the empirical formula of the compound? %N = x 100 = 30.5% N %O = x 100 = 69.5% O

%N = 30.5% N%O = 69.5% O To get Relative # Atoms N 30.530.5/14.0067= 2.18 2.18/2.18 = 1.00 1.00 1 O 69.569.5/15.9994= 4.34 4.34/2.18 = 1.99 1.992 Empirical Formula NO2 Empirical Formula Weight = 46.0 (%/gaw), Divide by Smaller and by Multiply Integer Empirical Formula from % composition

Molecular Formula = n x empirical Formula Molecular from Empirical Formula Molecular weight 180

Molecular Formula from Empirical Molecular Formula Weight 180 n = ------------------------- = ---- = 6 Empirical Formula Weight 30 Molecular Formula = C6H12O6 of glucose Empirical Formula Weight 30 Molecular Formula Weight = 180 Molecular Formula = (CH2O)n = (CH2O)6

Example:A colorless liquid used in rocket engines, whose empirical formula is NO2, has a molar mass (MW) of 92.0. What is the molecular formula? FW = 1(gaw)N+ 2(gaw)O= 46.0

5) A carbohydrate contains 38.71% weight of C, 9.71% weight of H and 51.58% weight of O. What is the empirical formula? Moles of C: Moles of H: Moles of O: Mole ration of C:= H:= O: = Simple mole ratio of C:= H:= O: = Empirical formula =

6) Combustion Analysis gives the following mass • %: 26.7% C; 2.2% H; 71.1% O • If a separate analysis determined the molecular • mass of the compound to be 90 g/mole. • Determine the Empirical Formula and the • Molecular Formula of the compound. • Moles of C: • Moles of H: • Moles of O: • Mole ration of C:= H:= O: = • Simple mole ratio of C:= H:= O: = • Empirical formula =

6) Combustion Analysis gives the following mass • %: 26.7% C; 2.2% H; 71.1% O • If a separate analysis determined the molecular • mass of the compound to be 90 g/mole. • Determine the Empirical Formula and the • Molecular Formula of the compound. • Empirical formula = • Empirical formula mass • Molar mass/empirical formula mass = • Molecular formula =

Combustion Analysis

7) When 5.00 g of a compound containing only • carbon and hydrogen is burned completely, 15.7 • g of CO2 and 6.45 g of H2O is produced. What is • the empirical formula? • Moles of C: • Moles of H: • Mole ratio of C:= H:= • Simple mole ratio of C:= H:= • Empirical formula of the compound =

Example Benzoic acid is known to sample contain only C, H, and O. A 6.49-mgof benzoic acid was burned completely in a C H analyzer. The increase in the mass of each absorption tube showed that16.4-mg of CO2 and 2.85-mg of H2O formed. What is the empirical formula of benzoic acid? (16.4-mg of CO2 )(12.01-mg C) #mg C = = 4.48-mg C (44.01-mg CO2) 4.48-mg C %C = x 100 = 68.9% C 6.49-mg sample

(2.85-mg of H2O )(2.02-mg H2) #mg H = = 0.319-mg H (18.02-mg H2O) 0.319 mg H %C = x 100 = 4.92% H 6.49-mg sample Example Benzoic acid is known to sample contain only C, H, and O. A 6.49-mgof benzoic acid was burned completely in a C H analyzer. The increase in the mass of each absorption tube showed that16.4-mg of CO2 and 2.85-mg of H2O formed. What is the empirical formula of benzoic acid?

Example Benzoic acid is known to sample contain only C, H, and O. A 6.49-mgof benzoic acid was burned completely in a C H analyzer. The increase in the mass of each absorption tube showed that16.4-mg of CO2 and 2.85-mg of H2O formed. What is the empirical formula of benzoic acid? % O= (100 - (68.9% C + 4.92% H) = 26.2% O 68.9% C +4.92% H + ? % O = 100%

Chemical Equations P4O10 (s) + 6H2O (l) = 4 H3PO4(l) Reactants enter into a reaction. Products are formed by the reaction. Parenthesisrepresent physical state Stoichiometric Coefficients are numbers in front of chemical formula gives the amounts (moles) of each substance used and each substance produced. Equation Must be balanced!

-----> , <==> or ? Chemical Reactions Could be described in words Chemical Reactants? Products? Reaction conditions? equation: Stoichiometric coefficients? Number in front of substances representing moles, atoms, molecules

Balanced Chemical Equation Representation of a chemical uses coefficients (prefix numbers known as stoichiometric coefficients) to represent the relative amounts of reactants and reaction which products

Writing and Balancing Chemical Equations . Write a word Convert word Balance the formula equation by the use of prefixes (coefficients) to balance the number of each type equation. of atom on the reactant and equation. equation into formula equation product sides of the

Types of Chemical Reactions

Reaction of H2 and I2

Synthesis or Combination Reactions Formation of a compound from simpler compounds or elements. Decomposition reactions Compound breaks up to from simp er compounds or el ements. Displacement reactions acement: In a compound Single displ is replaced by another element. Exchange reactions n a compound group or ion is replaced by another group or ion in another compound. Double displacement: an el ement

Formation Reactions Formation of a compound from elements at standard state. Combustion Reactions Compound reacts with oxygen to produce oxid es: water and carbon dioxide for organic compounds Acid/Base (Neutralization)Reactions An acid and a base react to form water and salt ( most ionic compounds are sa lts) Precipitation Reactions when two aqueous salt sol utions are mixed an insolu ble salt is formed when two aqueous salt solutions are mixed .

Balancing Chemical Equations 1. Check for Diatomic Molecules - H 2 - N2- O2 - F2 - Cl2 - Br2 - I2 if these elements appear By Themselves in an equation, they Must be written with a subscript of 2 2. Balance Metals 3. Balance Nonmetals 4. Balance Oxygen 5. Balance Hydrogen 6.Recount All Atoms 7. If EVERY coefficient will reduce, rewrite in the simplest whole-number ratio

Balance following reactions: a)MgO(s) + Si(s)  Mg(s) + SiO2(s) First balance Metals (Mg and Si): MgO(s) + Si(s)  Mg(s) + SiO2(s) Then balance Nonmetals(O): MgO(s) + Si(s) Mg(s) + SiO2(s) Recount All Atoms: Reactant side: Mg, O, Si. Product side : Mg, O, Si. b) P4O10(s) + H2O(l) H3PO4(l) First balance P and H: P4O10(s) + H2O(l) H3PO4(l) Then balance O: P4O10(s) + H2O(l) H3PO4(l)

8) Balance following reactions: Combustion reactions of organic compounds f) C3H8 (g) + O2 (g) = CO2 (g) + H2O(l) g) C4H10 (g) + O2 (g) = CO2 (g) + H2O(l)

Chemistry 100(02) Fall 2013

Chemistry 100(02) Fall 2013

Presentation Transcript

Chemistry 100 Chapter 9

Chemistry 100 Chapter 25

Introduction to Chemistry 100

Chemistry 100 – Chapter 20

Chemistry 100 Chapter 19

Chemistry 100

Chemistry 100 - Chapter 17

Chemistry 100 – Chapter 11

Chemistry 100 Chapter 3

CHEMISTRY

CHEMISTRY

Chemistry 100

Chemistry 100

Chemistry 100 Chapter 8

Chemistry 100

Chemistry 100

Chemistry 100 - Chapter 17

100

AP Chemistry

Chemistry 100

Introduction to Chemistry 100