CHAPTER 8. Stoichiometry

Size: px
Start display at page:

Download "CHAPTER 8. Stoichiometry"

Transcription

1 CHAPTER 8 Stoichiometry So far in your chemistry course, you have learned that chemists count quantities of elements and compounds in terms of moles and that they relate moles of a substance to mass by using the molar mass. In addition, you have learned to write chemical equations so that they represent the rearrangements of atoms that take place during chemical reactions, and you have learned to balance these equations. In this chapter you will be able to put these separate skills together to accomplish one of the most important tasks of chemistry using chemical equations to make predictions about the quantities of substances that react or are given off as products and relating those quantities to one another. This process of relating quantities of reactants and products in a chemical reaction to one another is called stoichiometry. First, look at an analogy. Suppose you need to make several sandwiches to take on a picnic with friends. You decide to make turkey-and-cheese sandwiches using the following equation: bread slices turkey slices 1 lettuce leaf 1 cheese slice : 1 turkey-and-cheese sandwich This equation shows that you need those ingredients in a ratio of ::1:1, respectively. You can use this equation to predict that you would need 30 turkey slices to make 15 sandwiches or 6 cheese slices to go with 1 turkey slices. Zinc reacts with oxygen according to the following balanced chemical equation: Zn : Zn Like the sandwich recipe, this equation can be viewed as a recipe for zinc oxide. It tells you that reacting two zinc atoms with a molecule of oxygen will produce two formula units of zinc oxide. Can you predict how many zinc oxide units could be formed from 500 zinc atoms? Could you determine how many moles of oxygen molecules it would take to react with 4 mol of zinc atoms? What if you had g of zinc and wanted to know how many grams of Zn could be made from it? Keep in mind that the chemical equation relates amounts, not masses, of products and reactants. The problems in this chapter will show you how to solve problems of this kind. 1 of 13

2 General Plan for Solving Stoichiometry Problems 1 Mass of substance A Convert using the molar mass of A. Amount in 3 mol of substance A Convert using the mole ratio A, given in the B balanced chemical equation. 4 Amount in mol of substance B Convert using the molar mass of B. Mass of substance B SAMPLE PRBLEM 1 Ammonia is made industrially by reacting nitrogen and hydrogen under pressure, at high temperature, and in the presence of a catalyst. The equation is N (g) 3H (g) B NH 3 (g). If 4.0 mol of H react, how many moles of NH 3 will be produced? SLUTIN 1. ANALYZE What is given in the problem? What are you asked to find? the balanced equation, and the amount of H in moles the amount of NH 3 produced in moles rganization of data is extremely important in dealing with stoichiometry problems. You will find that it is most helpful to make data tables such as the following one. of 13

3 Items Data Substance H NH 3 Coefficient in balanced equation 3 Molar mass NA* NA Amount 4.0 mol? mol Mass of substance NA NA * NA means not applicable to the problem. PLAN What steps are needed to Multiply by the mole ratio of NH 3 calculate the amount of NH 3 to H determined from the coeffithat can be produced from cients of the balanced equation. 4.0 mol H? Amount of H in mol multiply by mole ratio: NH 3 H 3 Amount of NH 3 in mol mole ratio given mol NH 3 mol NH 3 mol H 3 mol H 3. CMPUTE 4. EVALUATE Are the units correct? Yes; two significant figures is cor- rect because data were given to two significant figures. Is the number of significant figures correct? Yes; the answer has the correct units of moles NH 3. Is the answer reasonable? Yes; the answer is /3 of 4.0. PRACTICE 4.0 mol H mol NH 3 3 mol H.7 mol NH 3 1. How many moles of sodium will react with water to produce 4.0 mol of hydrogen in the following reaction? Na(s) H (l) : NaH(aq) H (g) ans: 8.0 mol Na. How many moles of lithium chloride will be formed by the reaction of chlorine with mol of lithium bromide in the following reaction? LiBr(aq) Cl (g) : LiCl(aq) Br (l) ans: mol LiCl 3 of 13

4 3. Aluminum will react with sulfuric acid in the following reaction. Al(s) 3H S 4 (l) : Al (S 4 ) 3 (aq) 3H (g) a. How many moles of H S 4 will react ans: 7 mol H S 4 with 18 mol Al? b. How many moles of each product ans: 7 mol H will be produced? 9 mol Al (S 4 ) 3 4. Propane burns in excess oxygen according to the following reaction. C 3 H 8 5 : 3C 4H a. How many moles each of C and H ans: 11.6 mol C are formed from 3.85 mol of propane? 15.4 mol H b. If mol of oxygen are used in the ans: mol C burning of propane, how many moles mol H each of C and H are produced? How 0.19 mol C 3 H 8 many moles of C 3 H 8 are consumed? SAMPLE PRBLEM Potassium chlorate is sometimes decomposed in the laboratory to generate oxygen. The reaction is KCl (s) B KCl(s) 3 (g). What mass of KCl do you need to produce 0.50 mol? SLUTIN 1. ANALYZE What is given in the problem? What are you asked to find? Items the amount of oxygen in moles the mass of potassium chlorate Data Substance KCl Coefficient in balanced 3 equation Molar mass* 1.55 g/mol NA Amount? mol 0.50 mol Mass? g NA *determined from the periodic table. PLAN What steps are needed to Use the mole ratio to convert calculate the mass of amount of to amount of KCl needed to produce KCl. Then convert amount of.50 mol? KCl to mass of KCl. 4 of 13

5 Amount of in mol multiply by mole ratio mol KCl 3 mol 3 Amount of KCl in mol multiply by molar mass of KCl 4 Mass of KCl in g 3. CMPUTE mole ratio molar mass KCl given mol KCl 1.55 g KCl mol 3 g KCl 3 mol 1 mol 3 KCl mol mol KCl 3 mol 1.55 g KCl 1 mol KCl 41 g KCl 4. EVALUATE Are the units correct? Is the number of significant figures correct? Is the answer reasonable? Yes; units canceled to give grams of KCl. Yes; two significant figures is correct. Yes; 41 g is about 1/3 of the molar mass of KCl, and 0.5 /3 1/3. PRACTICE 1. Phosphorus burns in air to produce a phosphorus oxide in the following reaction: 4P(s) 5 (g) : P 4 10 (s) a. What mass of phosphorus will be needed to produce 3.5 mol of P 4 10? ans: 403 g P b. If mol of phosphorus burns, what ans: 19.6 g mass of oxygen is used? What mass of 15.4 g P 4 P 4 10 is produced?. Hydrogen peroxide breaks down, releasing oxygen, in the following reaction: H (aq) : H (l) (g) a. What mass of oxygen is produced when mol of H decompose? ans: 9.44 g 5 of 13

6 b. What mass of water is produced when 5.0 mol is produced by this reaction? ans: 180 g H SAMPLE PRBLEM 3 How many moles of aluminum will be produced from 30.0 kg Al in the following reaction? Al : 4Al 3 SLUTIN 1. ANALYZE What is given in the problem? What are you asked to find? the mass of aluminum oxide the amount of aluminum produced Items Data Substance Al Al Coefficient in balanced equation 4 Molar mass g/mol NA Amount? mol? mol Mass 30.0 kg NA The molar mass of Al can be used to convert to moles Al. The mole ratio of Al:Al from the co- efficients in the equation will convert to moles Al from moles Al.. PLAN What steps are needed to calculate the amount of Al produced from 30.0 kg of Al? 1 Mass of Al in g multiply by the inverse of the molar mass of Al multiply by 1000 g 1 kg Mass of Al in kg Amount of Al in mol multiply by the mole ratio 4 mol Al mol Al 3 Amount of Al in mol 6 of 13

7 3. CMPUTE 30.0 kg Al 1000 g kg 4. EVALUATE Are the units correct? Is the number of significant figures correct? Is the answer reasonable? PRACTICE 1 molar mass Al mole ratio given 1000 g 1 mol Al 4 mol Al kg Al mol Al kg g Al mol Al 1 mol Al g Al 4 mol Al 588 mol Al mol Al Yes; units canceled to give moles of Al. Yes; three significant figures is correct. Yes; the molar mass of Al is about 100, so 30 kg of Al is about 300 mol. The mole ratio of Al:Al is :1, so the answer should be about 600 mol Al. 1. Sodium carbonate reacts with nitric acid according to the following equation. Na C (s) HN : NaN C H a. How many moles of Na C are required to produce g of NaN? ans: mol Na C b. If 7.50 g of Na C reacts, how many moles of C are produced? ans: mol C. Hydrogen is generated by passing hot steam over iron, which oxidizes to form Fe 3 4, in the following equation. 3Fe(s) 4H (g) : 4H (g) Fe 3 4 (s) a. If 65 g of Fe 3 4 is produced in the reaction, how many moles of hydrogen are produced at the same time? ans: 10.8 mol H b. How many moles of iron would be needed to generate 7 g of hydrogen? ans: 10. mol Fe 7 of 13

8 SAMPLE PRBLEM 4 Methane burns in air by the following reaction: CH 4 (g) (g) B C (g) H (g) What mass of water is produced by burning 500. g of methane? SLUTIN 1. ANALYZE What is given in the problem? What are you asked to find? Items 1 Mass of CH 4 in g multiply by the inverse of the molar mass of CH 4 the mass of methane in grams the mass of water produced Data Substance CH 4 H Coefficient in balanced equation 1 Molar mass g/mol 18.0 g/mol Amount? mol? mol Mass 500. g? g. PLAN What steps are needed to Convert grams of CH 4 to moles CH 4 calculate the mass of H by using the molar mass of CH 4. Use produced from the burning the mole ratio from the balanced of 500. g of CH 4? equation to determine moles H from moles CH 4. Use the molar mass of H to calculate grams H. Amount of CH 4 in mol multiply by the mole ratio mol H 1 mol CH 4 3 Amount of H in mol multiply by the molar mass of H 4 Mass of H in g 8 of 13

9 3. CMPUTE 1 molar mass CH 4 mole ratio given 1 mol CH mol H g CH g CH 4 1 mol CH g CH 4 1 mol CH g CH 4 mol H 1 mol CH 4 4. EVALUATE Are the units correct? Yes; three significant figures is cor- rect because the mass of CH 4 was given to three significant figures. Is the number of significant figures correct? Is the answer reasonable? molar mass H 18.0 g H 1 mol H g H 18.0 g H 1 mol H g H Yes; mass of H was required, and units canceled to give grams H. Yes; CH 4 and H have similar molar masses, and twice as many moles of H are produced as moles CH 4 burned. So, you would expect to get a little more than 1000 g of H. PRACTICE 1. Calculate the mass of silver bromide produced from.5 g of silver nitrate in the following reaction: AgN (aq) MgBr (aq) : AgBr(s) Mg(N ) (aq) ans: 4.9 g AgBr. What mass of acetylene, C H, will be produced from the reaction of 90. g of calcium carbide, CaC, with water in the following reaction? CaC (s) H (l) : C H (g) Ca(H) (s) ans: 37 g C H 3. Chlorine gas can be produced in the laboratory by adding concentrated hydrochloric acid to manganese(iv) oxide in the following reaction: Mn (s) 4HCl(aq) : MnCl (aq) H (l) Cl (g) a. Calculate the mass of Mn needed to produce 5.0 g of Cl. ans: 30.7 g Mn b. What mass of MnCl is produced when g of Cl is generated? ans: 0.16 g MnCl 9 of 13

10 ADDITINAL PRBLEMS 1. How many moles of ammonium sulfate can be made from the reaction of 30.0 mol of NH 3 with H S 4 according to the following equation: NH 3 H S 4 : (NH 4 ) S 4. In a very violent reaction called a thermite reaction, aluminum metal reacts with iron(iii) oxide to form iron metal and aluminum oxide according to the following equation: Fe Al : Fe Al a. What mass of Al will react with 150 g of Fe? b. If mol Al is produced in the reaction, what mass of Fe is produced? c. How many moles of Fe will react with 99.0 g of Al? 3. As you saw in Sample Problem 1, the reaction N (g) 3H (g) : NH 3 (g) is used to produce ammonia commercially. If 1.40 g of N are used in the reaction, how many grams of H will be needed? 4. What mass of sulfuric acid, H S 4, is required to react with 1.7 g of potassium hydroxide, KH? The products of this reaction are potassium sulfate and water. 5. Ammonium hydrogen phosphate, (NH 4 ) HP 4,a common fertilizer; is made from reacting phosphoric acid, H 3 P 4, with ammonia. a. Write the equation for this reaction. b. If g of ammonia react, how many moles of fertilizer will be produced? c. What mass of ammonia will react with 800 kg of H 3 P 4? 6. The following reaction shows the synthesis of zinc citrate, a ingredient in toothpaste, from zinc carbonate and citric acid. 3ZnC (s) C 6 H 8 7 (aq) : Zn 3 (C 6 H 5 7 ) (aq) 3H (l) 3C (g) a. How many moles of ZnC and C 6 H 8 7 are required to produce 30.0 mol of Zn 3 (C 6 H 5 7 )? b. What quantities, in kilograms, of H and C are produced by the reaction of 500. mol of citric acid? 7. Methyl butanoate, an oily substance with a strong fruity fragrance can be made by reacting butanoic acid with methanol according to the following equation: C 3 H 7 CH CH 3 H : C 3 H 7 CCH 3 H a. What mass of methyl butanoate is produced from the reaction of 5.5 g of butanoic acid? 10 of 13

11 b. In order to purify methyl butanoate, water must be removed. What mass of water is produced from the reaction of g of methanol? 8. Ammonium nitrate decomposes to yield nitrogen gas, water, and oxygen gas in the following reaction: NH 4 N : N 4H a. How many moles of nitrogen gas are produced when 36.0 g of NH 4 N reacts? b. If 7.35 mol of H are produced in this reaction, what mass of NH 4 N reacted? 9. Lead(II) nitrate reacts with potassium iodide to produce lead(ii) iodide and potassium nitrate. If 1.3 mg of lead nitrate are consumed, what is the mass of the potassium nitrate produced? 10. A car battery produces electrical energy with the following chemical reaction: Pb(s) Pb (s) H S 4 (aq) : PbS 4 (s) H (l) If the battery loses 0.34 kg of lead in this reaction, how many moles of lead(ii) sulfate are produced? 11. In a space shuttle, the C that the crew exhales is removed from the air by a reaction within canisters of lithium hydroxide. n average, each astronaut exhales about 0.0 mol of C daily. What mass of water will be produced when this amount reacts with LiH? The other product of the reaction is Li C. 1. Water is sometimes removed from the products of a reaction by placing them in a closed container with excess P Water is absorbed by the following reaction: P H : 4H 3 P 4 a. What mass of water can be absorbed by g of P 4 10? b. If the P 4 10 in the container absorbs mol of water, what mass of H 3 P 4 is produced? c. If the mass of the container of P 4 10 increases from g to g, how many moles of water are absorbed? 13. Ethanol, C H 5 H, is considered a clean fuel because it burns in oxygen to produce carbon dioxide and water with few trace pollutants. If 95.0 g of H are produced during the combustion of ethanol, how many grams of ethanol were present at the beginning of the reaction? 11 of 13

12 14. Sulfur dioxide is one of the major contributors to acid rain. Sulfur dioxide can react with oxygen and water in the atmosphere to form sulfuric acid, as shown in the following equation: H (l) (g) S (g) : H S 4 (aq) If 50.0 g of sulfur dioxide from pollutants reacts with water and oxygen found in the air, how many grams of sulfuric acid can be produced? How many grams of oxygen are used in the process? 15. When heated, sodium bicarbonate, NaHC, decomposes into sodium carbonate, Na C, water, and carbon dioxide. If 5.00 g of NaHC decomposes, what is the mass of the carbon dioxide produced? 16. A reaction between hydrazine, N H 4, and dinitrogen tetroxide, N 4, has been used to launch rockets into space. The reaction produces nitrogen gas and water vapor. a. Write a balanced chemical equation for this reaction. b. What is the mole ratio of N 4 to N? c. How many moles of N will be produced if mol of N H 4 are used by a rocket? d. How many grams of H are made when 450. kg of N 4 are consumed? 17. Joseph Priestley is credited with the discovery of oxygen. He produced by heating mercury(ii) oxide, Hg, to decompose it into its elements. How many moles of oxygen could Priestley have produced if he had decomposed g of mercury oxide? 18. Iron(III) chloride, FeCl 3,can be made by the reaction of iron with chlorine gas. How much iron, in grams, will be needed to completely react with 58.0 g of Cl? 19. Sodium sulfide and cadmium nitrate undergo a double-replacement reaction as shown by the following equation: Na S Cd(N ) : NaN CdS What is the mass, in milligrams, of cadmium sulfide that can be made from 5.00 mg of sodium sulfide? 0. Potassium permanganate and glycerin react explosively according to the following equation: 14KMn 4 4C 3 H 5 (H) 3 : 7K C 7Mn 5C 16H a. How many moles of carbon dioxide can be produced from 4.44 mol of KMn 4? b. If 5.1 g of H are produced, how many moles of glycerin, C 3 H 5 (H) 3,were used? 1 of 13

13 c. If 3.39 mol of potassium carbonate are made, how many grams of manganese(iii) oxide are also made? d. How many grams of glycerin will be needed to react with 50.0 g of KMn 4? How many grams of C will be produced in the same reaction? 1. Calcium carbonate found in limestone and marble reacts with hydrochloric acid to form calcium chloride, carbon dioxide, and water according to the following equation: CaC (s) HCl(aq) : CaCl (aq) C (g) H (l) a. What mass of HCl will be needed to produce kg of CaCl? b. What mass of C could be produced from the reaction of 750 g of CaC?. The fuel used to power the booster rockets on the space shuttle is a mixture of aluminum metal and ammonium perchlorate. The following balanced equation represents the reaction of these two ingredients: 3Al(s) 3NH 4 Cl 4 (s) : Al (s) +AlCl 3 (g) 3N(g) 6H (g) a. If g of Al react, what mass of NH 4 Cl 4,in grams,is required? b. If aluminum reacts with 60 kg of NH 4 Cl 4, what mass of nitrogen monoxide is produced? 3. Phosphoric acid is typically produced by the action of sulfuric acid on rock that has a high content of calcium phosphate according to the following equation: 3H S 4 Ca 3 (P 4 ) 6H : 3[CaS 4 H ] H 3 P 4 a. If kg of H S 4 react, how many moles of H 3 P 4 can be made? b. What mass of calcium sulfate dihydrate is produced by the reaction of 400. kg of calcium phosphate? c. If the rock being used contains 78.8% Ca 3 (P 4 ), how many metric tons of H 3 P 4 can be produced from 68 metric tons of rock? 4. Rusting of iron occurs in the presence of moisture according to the following equation: 4Fe(s) 3 (g) : Fe (s) Suppose that 3.19% of a heap of steel scrap with a mass of 1650 kg rusts in a year. What mass will the heap have after one year of rusting? 13 of 13

Unit 9 Stoichiometry Notes

Unit 9 Stoichiometry Notes Unit 9 Stoichiometry Notes Stoichiometry is a big word for a process that chemist s use to calculate amounts in reactions. It makes use of the coefficient ratio set up by balanced reaction equations to

More information

UNIT 1 Chemical Reactions Part II Workbook. Name:

UNIT 1 Chemical Reactions Part II Workbook. Name: UNIT 1 Chemical Reactions Part II Workbook Name: 1 Molar Volume 1. How many moles of a gas will occupy 2.50 L at STP? 2. Calculate the volume that 0.881 mol of gas at STP will occupy. 3. Determine the

More information

1. How many moles of hydrogen are needed to completely react with 2.00 moles of nitrogen?

1. How many moles of hydrogen are needed to completely react with 2.00 moles of nitrogen? Stoichiometry Mole-to-Mole 1. How many moles of hydrogen are needed to completely react with 2.00 moles of nitrogen? N 2 + H 2 NH 3 2. If 5.50 moles of calcium carbide (CaC 2 ) reacts with an excess of

More information

Stoichiometry of Gases

Stoichiometry of Gases CHAPTER 13 Stoichiometry of Gases Now that you have worked with relationships among moles, mass, and volumes of gases, you can easily put these to work in stoichiometry calculations. Many reactions have

More information

Example Exercise 10.1 Interpreting Chemical Equation Calculations

Example Exercise 10.1 Interpreting Chemical Equation Calculations Example Exercise 10.1 Interpreting Chemical Equation Calculations Given the chemical equation for the combustion of methane, CH 4, balance the equation and interpret the coefficients in terms of (a) moles

More information

Funsheet 3.0 [WRITING & BALANCING EQUATIONS] Gu/R. 2017

Funsheet 3.0 [WRITING & BALANCING EQUATIONS] Gu/R. 2017 Funsheet 3.0 [WRITING & BALANCING EQUATIONS] Gu/R. 2017 Balance the following chemical equations. Remember, it is not necessary to write "1" if the coefficient is one. 1. N 2 + H 2 NH 3 2. KClO 3 KCl +

More information

Problem Solving. Limiting Reactants

Problem Solving. Limiting Reactants Skills Worksheet Problem Solving Limiting Reactants At the beginning of Chapter 8, a comparison was made between solving stoichiometry problems and making turkey sandwiches. Look at the sandwich recipe

More information

Chemical Reactions. Chemical changes are occurring around us all the time

Chemical Reactions. Chemical changes are occurring around us all the time Chemical changes are occurring around us all the time Food cooking Fuel being burned in a car s engine Oxygen being used in the human body The starting materials are called reactants The ending materials

More information

Unit 7: Stoichiometry Homework Packet (85 points)

Unit 7: Stoichiometry Homework Packet (85 points) Name: Period: By the end of the Unit 7, you should be able to: Chapter 12 1. Use stoichiometry to determine the amount of substance in a reaction 2. Determine the limiting reactant of a reaction 3. Determine

More information

Sample Problem Set. Limiting Reactants

Sample Problem Set. Limiting Reactants Skills Worksheet Sample Problem Set Limiting Reactants At the beginning of Chapter 8, a comparison was made between solving stoichiometry problems and making turkey sandwiches. Look at the sandwich recipe

More information

4 CO O 2. , how many moles of KCl will be produced? Use the unbalanced equation below: PbCl 2. PbSO 4

4 CO O 2. , how many moles of KCl will be produced? Use the unbalanced equation below: PbCl 2. PbSO 4 Honors Chemistry Practice Final 2017 KEY 1. Acetylene gas, C 2, is used in welding because it generates an extremely hot flame when combusted with oxygen. How many moles of oxygen are required to react

More information

Slide 1 / 90. Stoichiometry HW. Grade:«grade» Subject: Date:«date»

Slide 1 / 90. Stoichiometry HW. Grade:«grade» Subject: Date:«date» Slide 1 / 90 Stoichiometry HW Grade:«grade» Subject: Date:«date» Slide 2 / 90 1 The calculation of quantities in chemical equations is called. A B C D E accuracy and precision dimensional analysis percent

More information

CHAPTER 9 CHEMICAL QUANTITIES

CHAPTER 9 CHEMICAL QUANTITIES Chemistry Name Hour Chemistry Approximate Timeline Students are expected to keep up with class work when absent. CHAPTER 9 CHEMICAL QUANTITIES Day Plans for the day Assignment(s) for the day 1 Begin Chapter

More information

UNIT 9 - STOICHIOMETRY

UNIT 9 - STOICHIOMETRY General Stoichiometry Notes STOICHIOMETRY: tells relative amts of reactants & products in a chemical reaction Given an amount of a substance involved in a chemical reaction, we can figure out the amount

More information

Unit 6: Stoichiometry. How do manufacturers know how to make enough of their desired product?

Unit 6: Stoichiometry. How do manufacturers know how to make enough of their desired product? Unit 6: Stoichiometry How do manufacturers know how to make enough of their desired product? Chocolate Chip Cookies Using the following recipe, complete the questions. Cookie Recipe 1.5 c sugar 1 c. butter

More information

Unit Two Worksheet WS DC U2

Unit Two Worksheet WS DC U2 Unit Two Worksheet WS DC U2 Name Period Short Answer [Writing]. Write skeleton equations representing the following reactions and then balance them. Then identify the reaction type. Include all needed

More information

Polyatomic ions You should know the symbols, names, and charges for these common polyatomic ions. Polyatomic Ions to Know + ClO 3. ClO 4 NO

Polyatomic ions You should know the symbols, names, and charges for these common polyatomic ions. Polyatomic Ions to Know + ClO 3. ClO 4 NO AP Chemistry Summer Review Packet 2018 Section 1: Names and Formulas of ionic compounds. Name: Polyatomic ions You should know the symbols, names, and charges for these common polyatomic ions. Polyatomic

More information

Name: Unit 9- Stoichiometry Day Page # Description IC/HW

Name: Unit 9- Stoichiometry Day Page # Description IC/HW Name: Unit 9- Stoichiometry Day Page # Description IC/HW Due Date Completed ALL 2 Warm-up IC 1 3 Stoichiometry Notes IC 1 4 Mole Map IC X 1 5 Mole to Mole Practice IC 1 6 Mass to Mole Practice IC 1/2 X

More information

If Sally has 4.56 x atoms of oxygen in a sample of aluminum oxide, how many kilograms of aluminum does she have?

If Sally has 4.56 x atoms of oxygen in a sample of aluminum oxide, how many kilograms of aluminum does she have? If Sally has 4.56 x 10 34 atoms of oxygen in a sample of aluminum oxide, how many kilograms of aluminum does she have? Bertha has.025 milligrams of sodium that she got from a sample of Sodium phosphate,

More information

AP Chapter 3 Study Questions

AP Chapter 3 Study Questions Class: Date: AP Chapter 3 Study Questions True/False Indicate whether the statement is true or false. 1. The mass of a single atom of an element (in amu) is numerically EQUAL to the mass in grams of 1

More information

Reaction Writing Sheet #1 Key

Reaction Writing Sheet #1 Key Reaction Writing Sheet #1 Key Write and balance each of the following reactions and indicate the reaction type(s) present: 1. zinc + sulfur zinc sulfide 8 Zn (s) + S 8 (s) 8 ZnS (s) synthesis 2. potassium

More information

5. The mass of oxygen required to completely convert 4.0 grams of hydrogen to water is 1) 8.0 grams; 2) 2.0 grams; 3) 32 grams; 4) 16 grams.

5. The mass of oxygen required to completely convert 4.0 grams of hydrogen to water is 1) 8.0 grams; 2) 2.0 grams; 3) 32 grams; 4) 16 grams. CHEMISTRY TEST NAME: MASS AND VOLUME DATE: EQUATION RELATIONSHIPS Directions: For each of the following questions, choose the number that best answers the question and place it on your answer sheet. Directions:

More information

AP Chemistry Summer Assignment

AP Chemistry Summer Assignment AP Chemistry Summer Assignment Due Date: Thursday, September 1 st, 2011 Directions: Show all of your work for full credit. Include units and labels. Record answers to the correct number of significant

More information

Chapter 9. Table of Contents. Stoichiometry. Section 1 Introduction to Stoichiometry. Section 2 Ideal Stoichiometric Calculations

Chapter 9. Table of Contents. Stoichiometry. Section 1 Introduction to Stoichiometry. Section 2 Ideal Stoichiometric Calculations Stoichiometry Table of Contents Section 1 Introduction to Stoichiometry Section 2 Ideal Stoichiometric Calculations Section 3 Limiting Reactants and Percentage Yield Section 1 Introduction to Stoichiometry

More information

Balancing Equations Notes

Balancing Equations Notes . Unit 9 Chemical Equations and Reactions What is a Chemical Equation? A is a written representation of the process that occurs in a chemical reaction. A chemical equation is written with the (starting

More information

General Stoichiometry Notes STOICHIOMETRY: tells relative amts of reactants & products in a chemical reaction

General Stoichiometry Notes STOICHIOMETRY: tells relative amts of reactants & products in a chemical reaction General Stoichiometry Notes STOICHIOMETRY: tells relative amts of reactants & products in a chemical reaction Given an amount of a substance involved in a chemical reaction, we can figure out the amount

More information

actual yield (p. 372) excess reagent (p. 369) mole-mole relationship for ag bw: x mol G b mol W a mol G xb a mol W Organizing Information

actual yield (p. 372) excess reagent (p. 369) mole-mole relationship for ag bw: x mol G b mol W a mol G xb a mol W Organizing Information 12 Study Guide 12 Study Guide Study Tip Prioritize Schedule your time realistically. Stick to your deadlines. If your class subscribes to the Interactive Textbook with ChemASAP, your students can go online

More information

CHAPTER 11 Stoichiometry Defining Stoichiometry

CHAPTER 11 Stoichiometry Defining Stoichiometry CHAPTER 11 Stoichiometry 11.1 Defining Stoichiometry Stoichiometry is the study of quantitative relationships between amounts of reactants used and products formed by a chemical reaction. Stoichiometry

More information

Study Guide: Stoichiometry

Study Guide: Stoichiometry Name: Study Guide: Stoichiometry Period: **YOUR ANSWERS MUST INCLUDE THE PROPER NUMBER OF SIG FIGS AND COMPLETE UNITS IN ORDER TO RECEIVE CREDIT FOR THE PROBLEM.** BALANCE THE FOLLOWING EQUATIONS TO USE

More information

Stoichiometric Calculations

Stoichiometric Calculations Slide 1 / 109 Slide 2 / 109 Stoichiometric Calculations Slide 3 / 109 Table of Contents Click on the topic to go to that section Stoichiometry Calculations with Moles Stoichiometry Calculations with Particles

More information

General Chemistry 1 CHM201 Unit 2 Practice Test

General Chemistry 1 CHM201 Unit 2 Practice Test General Chemistry 1 CHM201 Unit 2 Practice Test 1. Which statement about the combustion of propane (C 3H 8) is not correct? C 3H 8 5O 2 3CO 2 4H 2O a. For every propane molecule consumed, three molecules

More information

Math Tutor. Answers 1. C 3. Balancing Chemical Equations 3CO 2 + 5O 2 + 4H 2. a. KI(aq) + Cl 2 (g) KCl(aq) + I 2 (s)

Math Tutor. Answers 1. C 3. Balancing Chemical Equations 3CO 2 + 5O 2 + 4H 2. a. KI(aq) + Cl 2 (g) KCl(aq) + I 2 (s) Math Tutor A chemical equation is a written expression of an actual chemical reaction in which certain atoms, ions, or molecules become rearranged in a specific way. Therefore, the equation must represent

More information

Stoichiometric Calculations

Stoichiometric Calculations Slide 1 / 109 Slide 2 / 109 Stoichiometric Calculations Slide 3 / 109 Slide 4 / 109 Table of Contents Stoichiometry Calculations with Moles Click on the topic to go to that section Stoichiometry Calculations

More information

THE MOLE - PART 2. Multiple Choice Identify the letter of the choice that best completes the statement or answers the question.

THE MOLE - PART 2. Multiple Choice Identify the letter of the choice that best completes the statement or answers the question. THE MOLE - PART 2 Multiple Choice Identify the letter of the choice that best completes the statement or answers the question. 1. Which one of the following statements is a quantitative observation? a.

More information

Ch 9 Stoichiometry Practice Test

Ch 9 Stoichiometry Practice Test Ch 9 Stoichiometry Practice Test Multiple Choice Identify the choice that best completes the statement or answers the question. 1. A balanced chemical equation allows one to determine the a. mole ratio

More information

Problem Solving. Percentage Yield

Problem Solving. Percentage Yield Skills Worksheet Problem Solving Percentage Yield Although we can write perfectly balanced equations to represent perfect reactions, the reactions themselves are often not perfect. A reaction does not

More information

Chemical Reactions and Stoichiometry. Ms. Grobsky

Chemical Reactions and Stoichiometry. Ms. Grobsky Chemical Reactions and Stoichiometry Ms. Grobsky Wrapping Up the Lab As we know, the function of the airbags is to protect the occupant from injuring themselves by hitting against the windshield, steering

More information

7.1. What Is Stoichiometry? SECTION. Key Terms

7.1. What Is Stoichiometry? SECTION. Key Terms SECTION 7.1 What Is Stoichiometry? Key Terms stoichiometry mole ratio stoichiometry the study of the quantitative relationships among the amounts of reactants used and the amounts of products formed in

More information

Unit IV: Chemical Equations & Stoichiometry

Unit IV: Chemical Equations & Stoichiometry Unit IV: Chemical Equations & Stoichiometry A. The chemical equation B. Types of chemical reactions A. Activity series of metals B. Solubility rules C. Rules for writing and balancing equations D. Calculations

More information

Counting by mass: The Mole. Unit 8: Quantification of Chemical Reactions. Calculating molar mass. Particles. moles and mass. moles and particles

Counting by mass: The Mole. Unit 8: Quantification of Chemical Reactions. Calculating molar mass. Particles. moles and mass. moles and particles Unit 8: Quantification of Chemical Reactions Chapter 10: The mole Chapter 12: Stoichiometry Counting by mass: The Mole Chemists can t count individual atoms Use moles to determine amounts instead mole

More information

(DO NOT WRITE ON THIS TEST)

(DO NOT WRITE ON THIS TEST) Final Prep Chap 8&9 (DO NOT WRITE ON THIS TEST) Multiple Choice Identify the choice that best completes the statement or answers the question. 1. After the correct formula for a reactant in an equation

More information

Chapter 6. Chemical Reactions. Sodium reacts violently with bromine to form sodium bromide.

Chapter 6. Chemical Reactions. Sodium reacts violently with bromine to form sodium bromide. Chapter 6 Chemical Reactions Sodium reacts violently with bromine to form sodium bromide. Evidence of Chemical Reactions Chemical Equations Reactants Products Reactant(s): Substance(s) present before the

More information

Slide 1 / 90. Slide 2 / 90. Slide 3 / 90 A B. percent yield stoichiometry A B. atoms and mass

Slide 1 / 90. Slide 2 / 90. Slide 3 / 90 A B. percent yield stoichiometry A B. atoms and mass Stoichiometry HW Slide 1 / 90 Grade:«grade» Subject: ate:«date» 1 The calculation of quantities in chemical equations is called. Slide 2 / 90 accuracy and precision dimensional analysis percent composition

More information

2.9 The Mole and Chemical Equations:

2.9 The Mole and Chemical Equations: 2.9 The Mole and Chemical Equations: Stoichiometry Whether you are making omelettes in a kitchen or soap in a factory, you need to know the quantities of ingredients required to produce a certain quantity

More information

Chapter 3 The Mole and Stoichiometry

Chapter 3 The Mole and Stoichiometry Chapter 3 The Mole and Stoichiometry Chemistry, 7 th Edition International Student Version Brady/Jespersen/Hyslop Brady/Jespersen/Hyslop Chemistry7E, Copyright 015 John Wiley & Sons, Inc. All Rights Reserved

More information

UNIT 9 - STOICHIOMETRY

UNIT 9 - STOICHIOMETRY General Stoichiometry Notes STOICHIOMETRY: tells relative amts of reactants & products in a chemical reaction Given an amount of a substance involved in a chemical reaction, we can figure out the amount

More information

MIDTERM REVIEW. UNIT 1: Mass/Measurement

MIDTERM REVIEW. UNIT 1: Mass/Measurement MIDTERM REVIEW UNIT 1: Mass/Measurement Practice Problems 1. Circle the word/phrase that best fits the statement: A. [ PHYSICAL OR CHEMICAL] changes are changes in which the identity of the substance does

More information

Chemical Reactions and Equations

Chemical Reactions and Equations Chemical Reactions and Equations 5-1 5.1 What is a Chemical Reaction? A chemical reaction is a chemical change. A chemical reaction occurs when one or more substances is converted into one or more new

More information

Exe r c i s es Answers to odd-numbered Exercises are in Appendix I. Key Te rm s Answers to Key Terms are in Appendix H.

Exe r c i s es Answers to odd-numbered Exercises are in Appendix I. Key Te rm s Answers to Key Terms are in Appendix H. 284 CHAPTER 10 CHEMICAL EQUATION CALCULATIONS Moles reactant (b) 'llljll!llim'.lllill!w 11r1 nrr1111 Moles product.,.. Concept Map-Summary Stoichiometry We use a strategy map to show the application unit

More information

Sample Problem Set. Teacher Notes and Answers. Skills Worksheet PERCENTAGE YIELD. Name: Class: Date:

Sample Problem Set. Teacher Notes and Answers. Skills Worksheet PERCENTAGE YIELD. Name: Class: Date: Skills Worksheet Sample Problem Set Teacher Notes and Answers PERCENTAGE YIELD 1. a. 64.3% yield b. 58.0% yield c. 69.5% yield d. CH 3 CH OH is limiting; 79% yield. a. 69.5% yield b. 79.0% yield c. 48%

More information

2H 2 (g) + O 2 (g) 2H 2 O (g)

2H 2 (g) + O 2 (g) 2H 2 O (g) Mass A AP Chemistry Stoichiometry Review Pages Mass to Mass Stoichiometry Problem (Review) Moles A Moles B Mass B Mass of given Amount of given Amount of unknown Mass of unknown in grams in Moles in moles

More information

The Atom, The Mole & Stoichiometry. Chapter 2 I. The Atomic Theory A. proposed the modern atomic model to explain the laws of chemical combination.

The Atom, The Mole & Stoichiometry. Chapter 2 I. The Atomic Theory A. proposed the modern atomic model to explain the laws of chemical combination. Unit 2: The Atom, The Mole & Stoichiometry Chapter 2 I. The Atomic Theory A. proposed the modern atomic model to explain the laws of chemical combination. Postulates of the atomic theory: 1. All matter

More information

Identify the reaction type, predict the products, and balance the equations. If it is a special decomposition or synthesis, identify which kind.

Identify the reaction type, predict the products, and balance the equations. If it is a special decomposition or synthesis, identify which kind. Identify the reaction type, predict the products, and balance the equations. If it is a special decomposition or synthesis, identify which kind. 1. calcium + oxygen 2. cupric carbonate 3. aluminum + hydrochloric

More information

2. Relative molecular mass, M r - The relative molecular mass of a molecule is the average mass of the one molecule when compared with

2. Relative molecular mass, M r - The relative molecular mass of a molecule is the average mass of the one molecule when compared with Chapter 3: Chemical Formulae and Equations 1. Relative atomic mass, A r - The relative atomic mass of an element is the average mass of one atom of an element when compared with mass of an atom of carbon-12

More information

Moles, Mass, and Limiting Reactants

Moles, Mass, and Limiting Reactants Moles, Mass, and Limiting Reactants Interpreting a Chemical Equation 1. How many moles of chlorine gas react with 1 mol of hydrogen gas according to the balanced chemical equation? (a) 1 mol (b) 2 mol

More information

General Stoichiometry Notes STOICHIOMETRY: tells relative amts of reactants & products in a chemical reaction

General Stoichiometry Notes STOICHIOMETRY: tells relative amts of reactants & products in a chemical reaction General Stoichiometry Notes STOICHIOMETRY: tells relative amts of reactants & products in a chemical reaction Given an amount of a substance involved in a chemical reaction, we can figure out the amount

More information

Name: Class: Date: ID: A. (g), what is the ratio of moles of oxygen used to moles of CO 2 produced? a. 1:1 b. 2:1 c. 1:2 d. 2:2

Name: Class: Date: ID: A. (g), what is the ratio of moles of oxygen used to moles of CO 2 produced? a. 1:1 b. 2:1 c. 1:2 d. 2:2 Name: Class: _ Date: _ Chpt 12 review Multiple Choice Identify the choice that best completes the statement or answers the question. 1. What is conserved in the reaction shown below? H 2 + Cl 2 2HCl a.

More information

9.) A chloride of rhenium contains 63.6% rhenium. What is the formula of this compound? (ReCl 3 )

9.) A chloride of rhenium contains 63.6% rhenium. What is the formula of this compound? (ReCl 3 ) Homework Stoichiometry 1.) An oxide of iron has the formula Fe 3 O 4. What mass percent of iron does it contain? (72.360%) 2.) Hydrocortisone valerate is an ingredient in hydrocortisone cream, prescribed

More information

Unit 4: Reactions and Stoichiometry

Unit 4: Reactions and Stoichiometry Unit 4: Reactions and Stoichiometry Reactions Chemical equation Expression representing a chemical reaction Formulas of reactants on the left side Formulas of products on the right side Arrow(s) connect(s)

More information

Chapter 4: Chemical Reactions in Aqueous Solutions. 4.1 Some Electronic Properties of Aqueous Solutions

Chapter 4: Chemical Reactions in Aqueous Solutions. 4.1 Some Electronic Properties of Aqueous Solutions Chapter : Chemical Reactions in Aqueous Solutions Water: the universal solvent ¾ of Earth s surface water in living organisms Some Electrical Properties of Aqueous Solutions Reactions of Acids and Bases

More information

c formula units of potassium iodide a moles of beryllium b moles of calcium c mole of sulfur a. 6.

c formula units of potassium iodide a moles of beryllium b moles of calcium c mole of sulfur a. 6. Chapter 11 1. Identify and calculate the number of representative particles in each of the following quantities. a. 2.15 moles of gold 2.15 mol Au 1.29 10 24 atoms Au b. 0.151 mole of nitrogen oxide 0.15O

More information

Types of Chemical Reactions

Types of Chemical Reactions Types of Chemical Reactions There are five types of chemical reactions: 1. Formation (combination) 2. Decomposition 3. Single Displacement 4. Double Displacement 5. Combustion 1 Formation (Combination)

More information

Unit 10: Stoichiometry Funsheets. Part A: Balanced Chemical Equations- Balance the following chemical equations.

Unit 10: Stoichiometry Funsheets. Part A: Balanced Chemical Equations- Balance the following chemical equations. Unit 10: Stoichiometry Funsheets Part A: Balanced Chemical Equations- Balance the following chemical equations. 1) Al + Cl 2 AlCl 3 2) Mg(ClO) 2 MgCl 2 + O 2 3) FeCl 3 + LiOH Fe(OH) 3 + LiCl 4) Na + O

More information

Balancing Equations Notes

Balancing Equations Notes . Unit 7 Chemical Equations and Reactions What is a Chemical Equation? A is a written representation of the process that occurs in a chemical reaction. A chemical equation is written with the (starting

More information

Chemical Equation Calculations

Chemical Equation Calculations Mole Relationships Chemical Equation Calculations 1. How many moles of chlorine gas react with 1 mol of hydrogen gas according to the balanced chemical equation? (a) 1 mol (b) 2 mol (c) 3 mol (d) 4 mol

More information

Chemistry 2202 Stoichiometry Unit Retest Review Guide

Chemistry 2202 Stoichiometry Unit Retest Review Guide Chemistry 2202 Stoichiometry Unit Retest Review Guide Chapter 2: The Mole Pgs. 42 77 You should be able to: 1. Define the term molar mass and calculate the molar mass of any given element or compound.

More information

TOPIC 9. CHEMICAL CALCULATIONS III - stoichiometry.

TOPIC 9. CHEMICAL CALCULATIONS III - stoichiometry. TOPIC 9. CHEMICAL CALCULATIONS III - stoichiometry. Stoichiometric calculations. By combining a knowledge of balancing equations with the concept of the mole, it is possible to easily calculate the masses

More information

Types of Chemical Reactions

Types of Chemical Reactions Types of Chemical Reactions Textbook pages 256 271 Section 6.1 Summary Before You Read Many chemical reactions occur in daily life. In the lines below, describe one chemical reaction you have observed.

More information

Name: Class: Date: SHORT ANSWER Answer the following questions in the space provided.

Name: Class: Date: SHORT ANSWER Answer the following questions in the space provided. CHAPTER 9 REVIEW Stoichiometry SECTION 1 SHORT ANSWER Answer the following questions in the space provided. 1. The coefficients in a chemical equation represent the (a) masses in grams of all reactants

More information

Stoichiometry is the relationship between the amount of reactants used and the amount of products produced in a chemical reaction.

Stoichiometry is the relationship between the amount of reactants used and the amount of products produced in a chemical reaction. Unit 7 STOICHIOMETRY 1. Introduction to Stoichiometry 2. Mole Mole Stoichiometry 3. Mass Mole Stoichiometry 4. Mass Mass Stoichiometry 5. Mass Volume & Volume Volume Stoichiometry 6. Excess & Limiting

More information

Balancing Equations Notes

Balancing Equations Notes . Unit 9 Chemical Equations and Reactions What is a Chemical Equation? A Chemical Equation is a written representation of the process that occurs in a chemical reaction. A chemical equation is written

More information

(a) graph Y versus X (b) graph Y versus 1/X

(a) graph Y versus X (b) graph Y versus 1/X HOMEWORK 5A Barometer; Boyle s Law 1. The pressure of the first two gases below is determined with a manometer that is filled with mercury (density = 13.6 g/ml). The pressure of the last two gases below

More information

Chapter 8 Chemical Reactions

Chapter 8 Chemical Reactions Chemistry/ PEP Name: Date: Chapter 8 Chemical Reactions Chapter 8: 1 7, 9 18, 20, 21, 24 26, 29 31, 46, 55, 69 Practice Problems 1. Write a skeleton equation for each chemical reaction. Include the appropriate

More information

Representing Chemical Change

Representing Chemical Change Representing Chemical Change As we have already mentioned, a number of changes can occur when elements react with one another. These changes may either be physical or chemical. One way of representing

More information

During photosynthesis, plants convert carbon dioxide and water into glucose (C 6 H 12 O 6 ) according to the reaction:

During photosynthesis, plants convert carbon dioxide and water into glucose (C 6 H 12 O 6 ) according to the reaction: Example 4.1 Stoichiometry During photosynthesis, plants convert carbon dioxide and water into glucose (C 6 H 12 O 6 ) according to the reaction: Suppose that a particular plant consumes 37.8 g of CO 2

More information

Formulas and Models 1

Formulas and Models 1 Formulas and Models 1 A molecular formula shows the exact number of atoms of each element in the smallest unit of a substance An empirical formula shows the simplest whole-number ratio of the atoms in

More information

INTRODUCTORY CHEMISTRY Concepts and Critical Thinking

INTRODUCTORY CHEMISTRY Concepts and Critical Thinking INTRODUCTORY CHEMISTRY Concepts and Critical Thinking Sixth Edition by Charles H. Corwin Chapter 10 Chemical Equation Calculations by Christopher Hamaker 2011 Pearson Education, Inc. Chapter 10 1 What

More information

SCH4U Chemistry Review: Fundamentals

SCH4U Chemistry Review: Fundamentals SCH4U Chemistry Review: Fundamentals Particle Theory of Matter Matter is anything that has mass and takes up space. Anything around us and in the entire universe can be classified as either matter or energy.

More information

The ions/polyatomic ions, solubility rules, and activity series will need to be memorized.

The ions/polyatomic ions, solubility rules, and activity series will need to be memorized. AP Chemistry Summer Assignment 2012 The summer assignment is designed to help you practice: - writing chemical formulas, names, and chemical equations - reaction types - predicting reaction products -

More information

Germanium 32. Nickel Uranium 92. Sulfur THE MOLE Worksheets

Germanium 32. Nickel Uranium 92. Sulfur THE MOLE Worksheets Germanium 32 Ge 72.61 Nickel 28 Ni 8.693 Uranium 92 U 238.029 Sulfur 16 S 32.066 THE MOLE Worksheets Measuring Matter Counting particles We always use the appropriate units for the number of objects. For

More information

Outcomes: Interpret a balanced chemical equation in terms of moles, mass and volume of gases. Solve stoichiometric problems involving: moles, mass,

Outcomes: Interpret a balanced chemical equation in terms of moles, mass and volume of gases. Solve stoichiometric problems involving: moles, mass, Stoichiometry Outcomes: Interpret a balanced chemical equation in terms of moles, mass and volume of gases. Solve stoichiometric problems involving: moles, mass, volume, and heat of reaction. Stoichiometry

More information

Chemistry 20 Lesson 36 The Whole Enchilada

Chemistry 20 Lesson 36 The Whole Enchilada Unit I: Science 10 Review Chemistry 20 Lesson 36 The Whole Enchilada 1. Classify the substances as ionic (i), molecular (m), or acid (a) and provide the IUPAC name and the state of matter at SATP where

More information

Stoichiometry define Stoichiometry :

Stoichiometry define Stoichiometry : Stoichiometry define Stoichiometry : COEFFICIENTS from a balanced chemical equation are used as Molar Ratios to relate substances in a reaction Given this equation: N 2 + 3 H 2 2 NH 3, write the following

More information

STOICHIOMETRY CLASSWORK

STOICHIOMETRY CLASSWORK STOICHIOMETRY CLASSWORK Given the following equation: 2 C4H10 + 13 02 ---> 8 CO2 + 10 H20 Show what the following molar ratios should be. a, C4H10 / 02 b. 02 / CO2 o, 02 / H20 d, C4Hlo / CO2 e. C4Hlo /

More information

11.2 Types of Chemical Reactions> Chapter 11 Chemical Reactions Types of Chemical Reactions Describing Chemical Reactions

11.2 Types of Chemical Reactions> Chapter 11 Chemical Reactions Types of Chemical Reactions Describing Chemical Reactions Chapter 11 Chemical 11.1 Describing Chemical 11.2 Types of Chemical 11.3 in Aqueous Solution 1 CHEMISTRY & YOU What happens to the wax when you burn a candle? When you burn a candle, a chemical reaction

More information

Stoichiometry is the relationship between the amount of reactants used and/or the amount of products produced in a chemical reaction.

Stoichiometry is the relationship between the amount of reactants used and/or the amount of products produced in a chemical reaction. Unit 7 STOICHIOMETRY 1. Introduction to Stoichiometry 2. Mole Mole Stoichiometry 3. Mass Mole Stoichiometry 4. Mass Mass Stoichiometry 5. Mass Volume & Volume Volume Stoichiometry 6. Excess & Limiting

More information

UNIT 3 Chemical Quantities Chapter 5 Counting Atoms and Molecules The Mole

UNIT 3 Chemical Quantities Chapter 5 Counting Atoms and Molecules The Mole UNIT 3 Chemical Quantities Chapter 5 Counting Atoms and Molecules The Mole How does the mass of a substance relate to the number of atoms in the substance? Recall: Atomic mass units. Atomic mass units

More information

Unit 10: Stoichiometry. Stoichiometry= the process of using a to determine the relative amounts of reactants and products involved in a reaction.

Unit 10: Stoichiometry. Stoichiometry= the process of using a to determine the relative amounts of reactants and products involved in a reaction. Unit 10: Stoichiometry Stoichiometry= the process of using a to determine the relative amounts of reactants and products involved in a reaction. Info given by a chemical equation: Chemical changes involve

More information

Balancing Equations Notes

Balancing Equations Notes . Unit 6 Chemical Equations and Reactions What is a Chemical Equation? A Chemical Equation is a written representation of the process that occurs in a chemical reaction. A chemical equation is written

More information

Name Date Class THE ARITHMETIC OF EQUATIONS

Name Date Class THE ARITHMETIC OF EQUATIONS 12.1 THE ARITHMETIC OF EQUATIONS Section Review Objectives Calculate the amount of reactants required or product formed in a nonchemical process Interpret balanced chemical equations in terms of interacting

More information

AP Chemistry - Summer Assignment

AP Chemistry - Summer Assignment AP Chemistry - Summer Assignment NOTE: a. MUST SHOW ALL WORK FOR CREDIT!! b. Where work is required, do on a separate sheet of paper c. These are the foundational things you should be able to do when you

More information

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

7.1 Describing Reactions. Burning is a chemical change. When a substance undergoes a chemical change, a chemical reaction is said to take place. Burning is a chemical change. When a substance undergoes a chemical change, a chemical reaction is said to take place. Chemical Equations What is the law of conservation of mass? The law of conservation

More information

Chemistry 104 Final Exam Content Evaluation and Preparation for General Chemistry I Material

Chemistry 104 Final Exam Content Evaluation and Preparation for General Chemistry I Material Chemistry 104 Final Exam Content Evaluation and Preparation for General Chemistry I Material What is 25 mph in mm s 1? Unit conversions What is 1025 K in o F? Which is larger 1 ft 3 or 0.1 m 3? What is

More information

5 Energy from chemicals

5 Energy from chemicals 5 Energy from chemicals Content 5.1 Enthalpy 5.2 Hydrogen fuel cell Learning Outcomes Candidates should be able to: (a) (b) (c) (d) (e) describe the meaning of enthalpy change in terms of exothermic (H

More information

Chemical Reactions. Chemical Reactions Chemical reactions have a standard format when written:

Chemical Reactions. Chemical Reactions Chemical reactions have a standard format when written: 0.3.notebook A chemical property is a behaviour that occurs when substances change to create a new substance. When a new substance is created, a chemical change has occurred. New colour Evidence of chemical

More information

Mole Conversions Worksheet

Mole Conversions Worksheet Mole Conversions Worksheet There are three mole equalities. They are: 1 mol = 6.02 x 10 particles 1 mol = g-formula-mass (periodic table) 1 mol = 22.4 L for a gas at STP Each equality can be written as

More information

Unit IV: Stoichiometry

Unit IV: Stoichiometry Unit IV: Stoichiometry D. Calculations from chemical equations 1. Mol-mol calculations 2. Mol-gram calculations 3. Gram-gram calculations E. Limiting reactant (or reagent) F. Other applications of stoichiometry

More information

Stoichiometry. Consider the reaction in which the reactants are nitrogen gas and hydrogen gas. They produce the product ammonia gas.

Stoichiometry. Consider the reaction in which the reactants are nitrogen gas and hydrogen gas. They produce the product ammonia gas. 1 1. Interpreting Chemical Equations Stoichiometry Calculations using balanced equations are called stoichiometric calculations. The starting point for any problem involving quantities of chemicals in

More information

Name Date Class STUDY GUIDE FOR CONTENT MASTERY

Name Date Class STUDY GUIDE FOR CONTENT MASTERY Chemical Reactions Section 10.1 Reactions and Equations In your textbook, read about evidence of chemical reactions. For each statement, write yes if evidence of a chemical reaction is present. Write no

More information

2 nd Semester Study Guide 2016

2 nd Semester Study Guide 2016 Chemistry 2 nd Semester Study Guide 2016 Name: Unit 6: Chemical Reactions and Balancing 1. Draw the remaining product 2. Write a balanced equation for the following reaction: The reaction between sodium

More information