You can do what you have to do, and sometimes you can do it even better than you think you can. --Jimmy Carter--

Similar documents
Beset by a difficult problem? Now is your chance to shine. Pick yourself up, get to work and get triumphantly through it.

CHEMISTRY 101 Hour Exam I. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts)

CHEMISTRY 101 Hour Exam I. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts)

McCarren Section. 16 (12 pts.) 17 (18 pts.) Assume atmospheric pressure is 1.00 atm (unless explicitly told otherwise).

CHEMISTRY 202 Hour Exam I. Dr. D. DeCoste T.A.

CHEMISTRY 202 Hour Exam I. Dr. D. DeCoste T.A.

1. My answers for this Chemistry 102 exam should be graded with the answer sheet associated with: a) Form A b) Form B c) Form C d) Form D e) Form E

CHEMISTRY 202 Hour Exam I. Dr. D. DeCoste T.A.

CHEMISTRY 102B Practice Hour Exam I. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts)

CHEMISTRY 102A/E Hour Exam I. T. Hummel SECTION

CHEMISTRY 202 Hour Exam I (Multiple Choice Section) Dr. D. DeCoste T.A.

Principles of Chemistry: A Molecular Approach 2e (Tro) Chapter 2 Atoms and Elements

"No matter what costume you wear, when you start eating Halloween candy, you will be a goblin. - Unknown

TOPIC 7. CHEMICAL CALCULATIONS I - atomic and formula weights.

CHEMISTRY 202 Practice Hour Exam I. Dr. D. DeCoste T.A.

CHEMISTRY 102B Hour Exam II. Dr. D. DeCoste T.A.

Questions 1 to 58 must be answered on the Scantron sheets.

1. What does the test cover? All the material in the Unit 5 study guide and homework, plus review from earlier units (see practice test).

CHM 100 CHEMISTRY MAN & ENVIRONMENT Comprehensive SAMPLE MIDTERM EXAM

M T W R. MULTIPLE CHOICE. Choose the one alternative that best completes the statement or answers the question. (3 pts ea)

TOPIC 7. CHEMICAL CALCULATIONS I - atomic and formula weights.

Principles of Chemistry: A Molecular Approach, 3e (Tro) Chapter 2 Atoms and Elements

CHEMISTRY 101 Hour Exam II. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts)

CHEMISTRY 101 Hour Exam II. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts)

CHEMISTRY 101 Hour Exam II. Dr. D. DeCoste T.A (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts)

CHEMISTRY 202 Hour Exam I. Dr. D. DeCoste T.A.

M = Molarity = mol solute L solution. PV = nrt % yield = actual yield x 100 theoretical yield. PM=dRT where d=density, M=molar mass

Chemistry: A Molecular Approach, 2e (Tro) Chapter 2 Atoms and Elements. Multiple Choice Questions

Principles of Chemistry: A Molecular Approach (Tro) Chapter 2 Atoms and Elements

CHEMISTRY 102A Spring 2012 Hour Exam II. 1. My answers for this Chemistry 102 exam should be graded with the answer sheet associated with:

!!! DO NOT OPEN THIS EXAM BOOK UNTIL TOLD TO DO SO BY THE INSTRUCTOR!!!

TA Wednesday, 3:20 PM Each student is responsible for following directions. Read this page carefully.

Chemistry Midterm Exam Review Sheet Spring 2012

"It s not that I m so smart, it s just that I stay with problems longer." --Albert Einstein--

MULTIPLE CHOICE. Choose the one alternative that best completes the statement or answers the question.

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

Lesson 13: Ionic Equations & Intro to the Mole with Conversions

5. All isotopes of a given element must have the same (A) atomic mass (B) atomic number (C) mass number (D) number of neutrons

How do you measure matter?

Chemistry for Today General Organic and Biochemistry 9th Edition Seager

Name Midterm Review Date

Lab Chemistry - Final Exam Review 1. Express in scientific notation. A) D) B) E) C)

"We are what we repeatedly do. Excellence, therefore, is not an act but a habit." --Aristotle--

Name: Midterm Review Date:

Volume of water g g? 50.0 ml ?

Chemistry CRT Study Guide First Quarter

Section EXAM III Total Points = 150. November 15, Each student is responsible for following directions. Read this page carefully.

Unit Five- Chemical Quantities Chapter 9: Mole ratios, conversions between chemicals in a balanced reaction (mole, mass), limiting reactant, % yield

CHE-1A Practice Midterm #1 Name. 1. (10 pts.) Write chemical formulas for each of the following compounds.

CHEM 107 (Spring-2005) Exam 3 (100 pts)

Section EXAM II Total Points = 150. October 15, Each student is responsible for following directions. Read this page carefully.

General Chemistry I Final Exam 100 pts Fall 2010

Research tells us fourteen out of any ten individuals like chocolate. Happy Halloween!

Activity # 2. Name. Date due. Assignment on Atomic Structure

Solid Gas Liquid Plasma

CHEMISTRY PRACTICE EXAM #1

Name. Last 5 digits of Student Number: XXX X (may be the same as your social security number) Chem 103 Sample Examination #1

Physical Science

Form A. Exam 1, Ch 1-4 September 23, Points

Department of Chemistry. Chemistry 121: Atomic and Molecular Chemistry. Final Examination Wednesday, December 7, 2011 Time: 9:00am 12:00

CP Chemistry Semester 1 Final Test Review

b. Na. d. So. 1 A basketball has more mass than a golf ball because:

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

Instructions. 1. Do not open the exam until you are told to start.

Spring Semester Final Exam Study Guide

Chem 127, Final Exam December 10, 2003

Honor s Chemistry: Fall Semester Final

Review Multiple Choice Questions

Comparison of Solids, Liquids, and Gases

KEEP THIS SECTION!!!!!!!!!

CHEMISTRY 102 A/E Fall 2008 HOUR EXAM I NAME Dr. Christine Yerkes. A. DO NOT open the exam until you are instructed to do so.

FORMULA SHEET (tear off)


2. The accepted density for copper is 8.96 g/ml. Calculate the percent error for a measurement of 8.86 g/ml.

Regents Chemistry Practice Problems from Units 1-9 March 2018

CH 151 Midterm Exam Cover Sheet Sample Exam

Naming and Counting Atoms and Molecules. Chemistry--Unit 2

1. The arrangement of the elements from left to right in Period 4 on the Periodic Table is based on

CHM 1045 Qualifying Exam

Chapter 2 The Structure of Matter and the Chemical Elements

Final Exam Review Questions You will be given a Periodic Table, Activity Series, and a Common Ions Chart CP CHEMISTRY

Name. Student ID # CHEMISTRY 121 [Tyvoll] EXAM I. September 30, Possibly Useful Information:

Unit 4 ~ Learning Guide Name:

Chem 1711 Exam 1. Dr. Susan E. Bates. Name 9:00 OR 10:00

Semester 1 Exam Review

Chemistry Semester Two Exam Review. The test will consist of 50 multiple choice questions over the following topics.

Unit 3 Atomic Structure

Properties of gases. Gases. Lecture outline: Chapter 10. Composition: 1. Quantity of gas n mols

Lecture outline: Chapter 10. S. Ensign, gases

Chemistry Final Review 2017

CHE 105 ALTERNATE EXAMINATION I February 9, 2012

3. Most laboratory experiments are performed at room temperature at 65 C. Express this temperature in: a. F b. Kelvin

Unit 08 Review: The KMT and Gas Laws

CHEM 1004 Final Exam Fall 2010

Chapter 11. Preview. Lesson Starter Objectives Pressure and Force Dalton s Law of Partial Pressures

Silver nitrate solution is added to sodium dichromate solution

Chemistry Unit Test 1 Review

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

CP Chemistry Final Exam Review

Transcription:

CHEMISTRY 101 Hour Exam I September 22, 2015 Adams/Trinh Name Signature Section You can do what you have to do, and sometimes you can do it even better than you think you can. --Jimmy Carter-- This exam contains 17 questions on 7 numbered pages. Check now to make sure you have a complete exam. You have one hour and thirty minutes to complete the exam. Determine the best answer to the first 15 questions and enter these on the special answer sheet. Also, circle your responses in this exam booklet. Show all of your work and provide complete answers to questions 16 and 17. 1-15 (30 pts.) 16 (15 pts.) 17 (15 pts.) Total (60 pts) Useful Information: PV = nrt K = C + 273 R = 0.08206 L atm/mol K Avogadro s number = 6.022 10 23 Density = mass / volume Volume = length width height 1 lb. = 453.59 g Density of water = 1.0 g/ml = 1.0 g/cm 3 1 ml = 1 cm 3 STP = standard temperature and pressure = 0 C and 1.00 atm Assume atmospheric pressure is 1.00 atm (unless explicitly told otherwise). Always assume ideal behavior for gases (unless explicitly told otherwise).

Hour Exam I Page No. 1 1. Which of the following compounds is named correctly? a) Al 2 S 3 dialuminum trisulfate b) CuNO 3 copper(iii) nitrate c) Fe(ClO 4 ) 2 iron(iii) chlorate d) CsBr bromium ceside e) S 2 F 4 disulfur tetrafluoride 2. Which of the following substances is/are homogeneous mixtures? I. chocolate chip cookie II. iodine crystals (I 2 ) III. air (in this room) IV. gasoline (for a car) V. sucrose, C 12 H 22 O 11 (commonly found in table sugar) a) III and IV b) II and V c) III only d) I, III, and IV e) II, III, IV, and V 3. You are asked to determine the perimeter of the cover of your textbook (similar to what you did in lab class). You measure the length as 34.29 cm and the width as 26.72 cm. How many significant figures should you report for the perimeter? a) 1 b) 2 c) 3 d) 4 e) 5 4. A widely used weather instrument called a barometer can be built from a long thin tube of glass that is sealed at one end. The tube is completely filled with mercury and then inverted into a small pool of mercury. The level of the mercury inside the tube drops initially, but then stabilizes at some height. A measure of the height of the column of mercury once it stabilizes is a measure of pressure in mm Hg (or torr). Which of the following is the best explanation of how this barometer works? a) Air pressure outside the tube (pressure of the atmosphere) counterbalances the weight of the mercury inside the tube. b) Air pressure inside the tube causes the mercury to move in the tube until the air pressure inside and outside the tube are equal. c) Air pressure outside the tube causes the mercury to move in the tube until the air pressure inside and outside the tube are equal. d) The vacuum that is formed at the top of the tube of mercury (once the mercury level in the tube has dropped some) holds up the mercury. e) I have no idea how a barometer works.

Hour Exam I Page No. 2 5. What is the molar mass of iron(iii) carbonate? a) 171.71 g/mole b) 227.56 g/mole c) 243.73 g/mole d) 291.73 g/mole e) 299.58 g/mole 6. Tetraphenylporphyrin is a synthetic compound that resembles naturally occurring porphyrins. Porphyrins are found in hemoglobin and cytochromes and are related to chlorophyll and vitamin B 12. Tetraphenylporphyrin is composed of only C, H, and N atoms. Experiments reveal that tetraphenylporphyrin is 85.96% C and 9.12% N by mass. What is the empirical formula of tetraphenylporphyrin? a) C 7 H 5 N b) C 22 H 15 N 2 c) C 11 H 8 N d) C 7 HN 5 e) C 11 H 15 N 7. Of the isotopes represented below, which are isotopes of the same element? I. 20 X II. 22 X III. 22 X IV. 20 10 10 11 12 X V. 21 X 9 a) I, II, and IV b) I and II c) I and IV d) II and III e) All of the isotopes listed represent the same element. 8. You have a sample of copper (Cu) and a sample of aluminum (Al). You have an equal number of atoms in each sample. Which of the following statements concerning the masses of the samples is true? a) The mass of the copper sample is more than twice as great as the mass of the aluminum sample. b) The mass of the copper sample is more than the mass of the aluminum sample, but it is not more than twice as great. c) The mass of the aluminum sample is more than twice as great as the mass of the copper sample. d) The mass of the aluminum sample is more than the mass of the copper sample, but it is not more than twice as great. e) The masses of each sample are equal. 9. How many anions are there in 5.00 g of calcium bromide? a) 7.53 10 21 anions b) 1.51 10 22 anions c) 3.01 10 22 anions d) 6.02 10 23 anions e) 3.01 10 24 anions

Hour Exam I Page No. 3 10. How many of the following statements is/are true? I. Dalton was the first to theorize that atoms consist of smaller particles called electrons, protons, and neutrons. II. Dalton s atomic theory didn t account for isotopes. III. All particles in the nucleus of an atom are charged. IV. The number of neutrons in a neutral atom must equal the number of electrons. a) 0 b) 1 c) 2 d) 3 e) 4 11. A certain transition metal ion (M n+ ) forms a compound with oxygen (M x O y ). The molar mass of the compound is 250.2 g/mol. If the charge on the transition metal ion is +3, what is the identity of the transition metal, M? a) Th b) Ti c) Hg d) Ru e) Ag 12. Which of the following contains an element, a compound, and a mixture? a) copper, silicon dioxide, copper(ii) sulfate b) hydrogen, carbon dioxide, water c) chili, pizza, steak d) sodium, sodium chloride, salt water e) nitrogen, argon, air 13. Which of the following series of elements is not matched with the correct description? a) F, Cl, Br halogens b) He, Ne, Ar noble gases c) Mg, Ca, Sr alkaline earth metals d) Fe, Co, Ni transition metals e) B, Si, Ge metals 14. Topical hydrocortisone is often used to treat a variety of skin conditions such as insect bites, eczema, and rashes. Each molecule of hydrocortisone contains 21 atoms of carbon (plus other atoms). The mass percentage of carbon in hydrocortisone is 69.58%. What is the molar mass of hydrocortisone? a) 69.58 g/mole b) 121.7 g/mole c) 362.5 g/mole d) 579.4 g/mole e) Cannot be determined from the information given. 15. A 22-g sample of neon gas exerts a pressure of 2.0 atm at a certain temperature and volume. What pressure does a 44-g sample of argon gas exert at these conditions of temperature and volume? a) 0.50 atm b) 1.0 atm c) 2.0 atm d) 4.0 atm e) 5.8 atm

CHEMISTRY 101 Hour Exam I Fall 2015 Page No. 4 Answer the questions below. Show all work! Only complete and coherent explanations will receive full credit. Please limit your answers to the space provided. 16. a) You want to cook some raw noodles to make a pasta dish for supper. So you turn on the gas stovetop (which uses a flame), place a large pot of water over the flame, wait for the water to boil, place the noodles in the boiling water for 11 minutes, and then drain the noodles from the water. Identify one example of a physical change and one example of a chemical change in this process. Explain your answer for each. b) Your first day as a veterinarian, a client brings you his turtle who has ingested the last tablet from an unlabeled bottle of pain reliever. After taking a blood sample and doing some lab tests, you find out the drug had a 3:1 ratio of carbon to oxygen by mass. The three most common pain relievers are Advil (ibuprofen, C13H18O2), Bayer (aspirin, C9H8O4), and Tylenol (acetaminophen, C8H9NO2). Which, if any, of the pain relievers did the turtle most likely swallow? Support your answer with both calculations and an explanation in words.

Hour Exam I Page No. 5 c) You want to make a rectangular box that weighs 2.0 pounds (lbs) and floats on water. The width and height of the box are each 5.0 cm long. Choose the minimum length of the box that will keep it afloat on the water. Show all work and explain in words why you chose your answer. (Note: See the front page of your exam for useful conversions, equations, and/or constants.) a) 180 cm b) 360 cm c) 9.7 cm d) 7.3 cm e) 38 cm (Continue on to #17 on the next page.)

Hour Exam I Page No. 6 17. You have two rigid gas cylinders. Gas cylinder A has a volume of 48.2 L and contains N 2 (g) at 8.35 atm at 25 C. Gas cylinder B has a volume of 22.0 L and contains He(g) at 25 C. When the two cylinders are connected with a valve of negligible volume and the gases are mixed, the pressure in each cylinder becomes 8.71 atm. (Assume no reaction when the gases are mixed.) Answer the questions below and show all work. Only complete and coherent explanations will receive full credit. a) How many nitrogen molecules are present? b) What are the total number of moles of N 2 (g) and He(g) present after the gases are mixed? (Continue on to #17c-d on the next page.)

Hour Exam I Page No. 7 c) What was the beginning pressure of cylinder B containing only the He(g)? (i.e. before the valve was connected) d) Think about the He(g) before and after the cylinders were connected. Graph the relationship between pressure and volume (without numbers) for the He(g) showing this change and explain your answer making sure to address the variables P, V, n, and T. P V