What is Pressure? N/m 2 (newtons per

Similar documents
Gas Laws. The kinetic theory of matter states that particles which make up all types of matter are in constant motion.

= atm. 760 mm Hg. = atm. d. 767 torr = 767 mm Hg. = 1.01 atm

Gases. Macroscopic Properties. Petrucci, Harwood and Herring: Chapter 6

CHAPTER 12. Gases and the Kinetic-Molecular Theory

Boyles Law. At constant temperature the volume occupied by a fixed amount of gas is inversely proportional to the pressure on the gas 1 P = P

EXPERIMENT 15: Ideal Gas Law: Molecular Weight of a Vapor

Gases and Kinetic-Molecular Theory: Chapter 12. Chapter Outline. Chapter Outline

Gases. States of Matter. Molecular Arrangement Solid Small Small Ordered Liquid Unity Unity Local Order Gas High Large Chaotic (random)

Lecture Notes: Gas Laws and Kinetic Molecular Theory (KMT).

Temperature Measure of KE At the same temperature, heavier molecules have less speed Absolute Zero -273 o C 0 K

CHEMISTRY. Matter and Change. Section 13.1 Section 13.2 Section The Gas Laws The Ideal Gas Law Gas Stoichiometry

The Gas Laws. Our Atmosphere. Pressure = Units of Pressure. Barometer. Chapter 10

atm = 760 torr = 760 mm Hg = kpa = psi. = atm. = atm. = 107 kpa 760 torr 1 atm 760 mm Hg = 790.

Gas Laws. Heat and Temperature

THE IDEAL GAS LAW AND KINETIC THEORY

Kinetic Theory of Gases. 6.1 Properties of Gases 6.2 Gas Pressure. Properties That Describe a Gas. Gas Pressure. Learning Check.

Exam 4 Practice Problems false false

F321 MOLES. Example If 1 atom has a mass of x g 1 mole of atoms will have a mass of x g x 6.02 x = 7.

AS1 MOLES. oxygen molecules have the formula O 2 the relative mass will be 2 x 16 = 32 so the molar mass will be 32g mol -1

Chemistry 13: States of Matter

momentum change per impact The average rate of change of momentum = Time interval between successive impacts 2m x 2l / x m x m x 2 / l P = l 2 P = l 3

HEAT UNIT 1.1 KINETIC THEORY OF GASES Introduction Postulates of Kinetic Theory of Gases

IDEAL AND NON-IDEAL GASES

CHEMISTRY GAS LAW S WORKSHEET

ESSAY. Write your answer in the space provided or on a separate sheet of paper.

13.1 The Nature of Gases. What is Kinetic Theory? Kinetic Theory and a Model for Gases. Chapter 13: States of Matter. Principles of Kinetic Theory

Gas Laws. vacuum. 760 mm. air pressure. mercury

Study the following diagrams of the States of Matter. Label the names of the Changes of State between the different states.

Statistical Mechanics, Kinetic Theory Ideal Gas. 8.01t Nov 22, 2004

10.7 Kinetic Molecular Theory Kinetic Molecular Theory. Kinetic Molecular Theory. Kinetic Molecular Theory. Kinetic Molecular Theory

A. Kinetic Molecular Theory (KMT) = the idea that particles of matter are always in motion and that this motion has consequences.

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

Chapter 8: Gases and Gas Laws.

_CH06_p qxd 1/20/10 9:44 PM Page 69 GAS PROPERTIES PURPOSE

Name Class Date. In the space provided, write the letter of the term or phrase that best completes each statement or best answers each question.

5. Which temperature is equal to +20 K? 1) 253ºC 2) 293ºC 3) 253 C 4) 293 C

(1) The size of a gas particle is negligible as compared to the volume of the container in which the gas is placed.

THE KINETIC THEORY OF GASES

Chemistry 110 Lecture Unit 5 Chapter 11-GASES

Molar Mass of Butane

CHEM 120 Online Chapter 7

CLASSICAL CONCEPT REVIEW 8

7. Gases, Liquids, and Solids 7.1 Kinetic Molecular Theory of Matter

Temperature. Number of moles. Constant Terms. Pressure. Answers Additional Questions 12.1

IB Chemistry. DP Chemistry Review

Review - After School Matter Name: Review - After School Matter Tuesday, April 29, 2008

States of Matter CHAPTER 10 REVIEW SECTION 1. Name Date Class. Answer the following questions in the space provided.

Chapter 10. Can You draw the Lewis structure for a given covalently bonded molecule?

= 800 kg/m 3 (note that old units cancel out) J 1000 g = 4184 J/kg o C

Kinetic Theory of Gases. Chapter 33. Kinetic Theory of Gases

1. The Kinetic Theory of Matter states that all matter is composed of atoms and molecules that are in a constant state of constant random motion

Chapter 13 Gases. Review Skills

Materials 10-mL graduated cylinder l or 2-L beaker, preferably tall-form Thermometer

Unit 3: States of Matter Practice Exam

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

Kinetic Theory of Gases

PHYS-2010: General Physics I Course Lecture Notes Section XIII

CHEMISTRY II FINAL EXAM REVIEW

Name Date Class STATES OF MATTER. SECTION 13.1 THE NATURE OF GASES (pages )

Indiana's Academic Standards 2010 ICP Indiana's Academic Standards 2016 ICP. map) that describe the relationship acceleration, velocity and distance.

The Molar Mass of a Gas

HAVE A BLAST FINDING MOLAR MASS An Ideal Gas Experiment. Contents:

Physics 1114: Unit 6 Homework: Answers

10.7 Kinetic Molecular Theory Kinetic Molecular Theory. Kinetic Molecular Theory. Kinetic Molecular Theory. Kinetic Molecular Theory

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

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

Chemistry B11 Chapter 4 Chemical reactions

Chapter Test B. Chapter: Measurements and Calculations

TEMPERATURE AND PRESSURE OF AN IDEAL GAS: THE EQUATION OF STATE MISN THE EQUATION OF STATE by William C. Lane Michigan State University

EXPERIMENT 13: THE IDEAL GAS LAW AND THE MOLECULAR WEIGHT OF GASES

KINETIC MOLECULAR THEORY OF MATTER

Chapter 1: Chemistry: Measurements and Methods

Mole Notes.notebook. October 29, 2014

Kinetic Molecular Theory and Gas Laws

a) Use the following equation from the lecture notes: = ( J K 1 mol 1) ( ) 10 L

Test 5 Review questions. 1. As ice cools from 273 K to 263 K, the average kinetic energy of its molecules will

Chapter 10 Temperature and Heat

vap H = RT 1T 2 = kj mol kpa = 341 K

Chem 1A Exam 2 Review Problems

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

Calorimetry: Heat of Vaporization

Determining Equivalent Weight by Copper Electrolysis

Experiment 12E LIQUID-VAPOR EQUILIBRIUM OF WATER 1

MOLES, MOLECULES, FORMULAS. Part I: What Is a Mole And Why Are Chemists Interested in It?

THE HUMIDITY/MOISTURE HANDBOOK

CHAPTER 3: FORCES AND PRESSURE

Chemistry 112 Laboratory Experiment 6: The Reaction of Aluminum and Zinc with Hydrochloric Acid

DETERMINING THE MOLAR MASS OF CARBON DIOXIDE

EXPERIMENT 9 Evaluation of the Universal Gas Constant, R

MOLECULAR WEIGHT BY BOILING POINT ELEVATION

The Mole. Chapter 10. Dimensional Analysis. The Mole. How much mass is in one atom of carbon-12? Molar Mass of Atoms 3/1/2015

Keystone Exams: Chemistry Assessment Anchors and Eligible Content. Pennsylvania Department of Education

Experiment 8: Chemical Moles: Converting Baking Soda to Table Salt

CSUS Department of Chemistry Experiment 8 Chem.1A

1 Introduction The Scientific Method (1 of 20) 1 Introduction Observations and Measurements Qualitative, Quantitative, Inferences (2 of 20)

Chapter 1 Chemistry: The Study of Change

Chapter 3. Mass Relationships in Chemical Reactions

1. What is the molecular formula of a compound with the empirical formula PO and a gram-molecular mass of 284 grams?

Vacuum Technology. Kinetic Theory of Gas. Dr. Philip D. Rack

Other Stoich Calculations A. mole mass (mass mole) calculations. GIVEN mol A x CE mol B. PT g A CE mol A MOLE MASS :

Transcription:

Gases and The Gas Laws Why Do We Care about this Stuff? Fundamentals. The kinetic theory underlying the gas laws is one of the great successes of the development of our molecular view of the world, with a myriad of practical applications in everyday life (e.g., hot air balloons, compressed air balloons, explosions, internal combustion engine,...). Measuring amount of reaction. We have done this using: (i) # moles of reagent, (ii) mass of reagents, (iii) volume of a pure liquid or solid component whose density is known, (iv) volume of a solution whose concentration is known, and to that list we now want to add: (v) volume of a gaseous component of known temperature and (partial) pressure What is Pressure? Pressure is macroscopically defined as the amount of force per unit area, in SI units the amount of pressure is specified in terms of square meter) or Pa (pascal) 1 N/m 2 (newtons per but more commonly we use the units atm (atmospheres), bar, torr (or mm Hg), and in a few backward countries, lb/in 2 How do these units arise? How are they related? How is pressure measured? How do we construct a mercury (Hg) barometer?

What pressure, in SI units, will support a column of Hg 760 mm high? Assume that the mercury is in a tube of cross-section area of A [cm 2 ] olume of liquid Hg in column (above surface) = Since the density of liquid Hg is 13.595 08 g/cm 3, mass of Hg supported in column = 2 Force downward exerted by column (recall F =m a ; a=g =9.806 65 m/s 2 ) = upward force supporting column Area over which this Force is exerted = Pressure = Force Area = Define: 1 standard atmosphere of pressure:

What is the microscopic (or molecular) nature of pressure? A gas is a medium in which the distances between molecules are much greater than the sizes of the molecules, and except when undergoing a collision with one another or the wall of the container, they travel in straight lines. Consider the trajectory of one of the molecules in a cylinder of gas with a piston pushing down with a force F. When an upward-moving molecule of mass m and vertical speed u collides with the piston and rebounds downward: piston force F 3 Change in molecule s momentum is momentum gained by piston is molecule of mass m & speed v But: Force = mass acceleration = m du d (m u) = dt dt = {rate of change of momentum with time} Net force of gas on piston = (momentum change per collision) (no. collisions/sec) What is the microscopic nature of temperature? Temperature is the vulgar common for the sophisticated scientific concept called (by me) degree of hotness, which is more quantitatively specified as the average translational kinetic energy per (free) molecule. But compare: (a) a pot of boiling water @ 100 C (b) an oven heated to 100 C The degree of hotness is the same for both, but which would you rather put your hand in? Why?

For a fixed amount of gas in a fixed volume of gas, how does increasing temperature affect the pressure? 4 The Gas Laws 1. Boyle s Law Our everyday experience (e.g., a bicycle pump) tells us that if we force a given amount of gas to occupy a smaller volume, its pressure increases. Careful experimental measurement shows that the relationship between the two (for a fixed amount of gas at a fixed temperature!) is precisely reciprocal P 1 or P = const.(t) 2. Charles Law Empirically find that for a fixed amount of gas at a fixed pressure, its volume varies linearly with temperature; i.e., where T 0 is some chosen initial temperature (T ) = (T 0 ) + b (T T 0 ) = (T 0 ) [1 + α (T T 0 )] and also empirically find that when T is in C, for all gases α = 1/273.15

If we let our reference temperature T 0 = 0 C, the above equation becomes 5 (T ) = (0 C) [1 + α (T 0)] = Comparing volumes at two arbitrary temperatures T 1 and T 2, we obtain (T 2 ) (T 1 ) = This suggested a more convenient temperature scale (proposed by Lord Kelvin) This in turn suggested the existence of some absolute zero of temperature! It also means that Charles Law provides the basis for a gas thermometer for measuring temperature! 3. Avogadro s Hypothesis At a fixed temperature and pressure, the volume of a gas is directly proportional to the amount (no. moles) of gas. A more modern interpretation gives us an alternate statement: Equal volumes of different gases at the same temperature and pressure contain equal numbers of molecules. This tells us that we can use the volume of a gaseous component species to as a measure of the {amount of reaction} in a chemical process! Careful modern experiments tell us that the volume of exactly 1. 0 moles of any (ideal) gas at standard temperature and pressure (STP) is 22.414 L [where STP corresponds to P = 1. 0 atm pressure ( = 101.325 kpa) and temperature = 0 C = 273.15 K ] The Ideal Gas Law Boyle s law says that for fixed n & T : 1 P or = k b (n, T ) 1 P Charles law says that for fixed n & P : T.

For Boyle s law to remain valid, necessarily k b (n, T ) T which means that: = k A (n) T P But Avogadro s hypothesis (law) say that for fixed T & P : n For Boyle s & Charles laws to remain valid, necessarily k a (n) n or k a (n) = R n where R is a pure numerical constant! This then means that What is the value of R? = R n T P or P = n R T Recall... the volume of 1. 0 mole of any (ideal) gas at STP (1. 0 atm & 0 C) is 22.4141 L = 22.4141 10 3 m 3 R = P 1 T = 6 Exercise 1: What is the numerical value of R if a) pressure is in bar and volume in L? b) pressure is in torr and volume in L? Gas law problems are of 2 types: 1. Use the overall Ideal Gas equation P = n R T directly: given values of 3 variables, determine the fourth (and perhaps use it for something) N.B. (i) Essential to ensure that units for the value of R match those used for P &! (ii) Essential to specify T in the Kelvin scale. Exercise 2: What is the volume of 44.6 g of N 2 (g) at 100 C and a pressure of 227.5 kpa?

7 2. Use proportionality relations! Rearranging the ideal gas equation gives P n T = R = {a constant} = P 1 1 n 1 T 1 = P 2 2 n 2 T 2 for any two samples of any two (ideal) gases Exercise 3: If a given sample of gas at 23 C and 720 torr occupies 3.72 L, what is its volume at 22 C and 830 torr? Consider some more general problems. Exercise 4: If 0.896 g of a compound of N and O occupies 524 ml at P = 730 torr and T = 28 C, what are its molecular weight and its molecular formula? Exercise 5: Consider the reaction 2 NaN 3 (s) heat 2 Na(l) + 3 N 2 (g) How many grams of NaN 3 (g) are required to produce 20.0 L of N 2 (g) at 30.0 C and 786 mm Hg?

Gaseous Mixtures & Partial Pressures From the Ideal Gas Law, we see that P = n R T/. 8 Given a mixture of gases consisting of n 1 moles of species 1, n 2 moles of species 2, n 3 moles of species 3, and n 4 moles of species 4 all in the same rigid container at the same temperature, each component exerts a pressure against the walls, completely oblivious to the presence of the others! P 1 = n 1 R T P 2 = n 2 R T P 3 = n 3 R T P 4 = n 4 R T Dalton s law of partial pressures then tells us that and P tot = P 1 + P 2 + P 3 + P 4 = (n 1 + n 2 + n 3 + n 4 ) R T = n tot R T P i is called the partial pressure of species i : P i P tot = n i n tot = Exercise 6: If a rigid 5.0 L container at 20 C contains 0.50 moles of H 2 and 1.25 moles of He, what are the partial pressures of the two components and the total pressure in the container?

How can we measure amount of gas produced in a reaction? Ans. collect the gas over water. Perform the reaction in a sealed container and collect the gas produced as shown in the diagram below in a bottle which initially was completely filled with water. After the reaction stops, adjusting the height of the bottle to make the level of water inside and outside the bottle exactly the same makes the pressure of gas in the bottle exactly equal to the (assumed known) atmospheric pressure. The volume of gas in the bottle is then the volume of gaseous product. But... while the total pressure of gas in the bottle equals the (assumed known) external atmospheric pressure... 9 Exercise 7: If solid calcium carbide CaC 2 is heated gently in water it will produce acetylene gas C 2 H 2 (g) and calcium hydroxide Ca(OH) 2 (aq). If a 2.00 g sample of CaC 2 reacts in this way to produce 524 ml of gas which is collected over water at 23 C and 1.050 atm, what was the % yield for the experiment?

The Kinetic-Molecular Theory of Gases The assumptions underlying the Kinetic-Molecular Theory of Gases are: 1. Gases consist of large numbers of tiny particles (atoms or molecules) moving in straight-line random trajectories. 2. Gas molecules (or atoms) are very small compared to the distance between them, so most of the space they move about in is completely empty; in the ideal limit, we think of them as point masses occupying no space. 3. The duration of collisions of molecules with each other or with the walls of their container is very much shorter than the time between collisions; in the idea limit, the collisions are assumed to be instantaneous. 4. The forces between molecules are negligible, except at the instant of collision. 5. While individual molecules may gain or lose energy in a collision, the total energy of the system (ensemble of molecules) remains constant. A simplified Kinetic Theory Derivation of Boyle s Law Consider a cubic box of volume containing N molecules of gas, and assume all molecules have the same speed u all molecules move parallel to one of the three orthogonal axes x, y, & z. This means that on average: 1/6 of the molecules move with speed u in the +x direction 1/6 of the molecules move with speed u in the x direction 1/6 of the molecules move with speed u in the +y direction 1/6 of the molecules move with speed u in the y direction 1/6 of the molecules move with speed u in the +z direction 1/6 of the molecules move with speed u in the z direction Consider molecules moving in the +y direction. a distance u in 1 second: Since each molecule moves no. molecules which hit a circle of area A on the right hand wall in 1 second 10 = [no. molecules in a cylinder of length u to left of the circle of area A ] / 6 = [molecular concentration] [volume of cylinder of length u and area A] / 6 =

wall of 11 container mass m area A speed u length u imaginary cylinder Recalling our earlier discussion of the molecular definition of pressure The force on wall segment of area A due to colliding gas molecules = [momentum transfer to wall per collision] [no. collision/sec with area A] Therefore P = force area = and hence P = Aside! We know that molecules actually travel randomly in all directions molecules actually have a distribution of molecular speeds, which turns out to have the mathematical form f(u) u 2 exp { 1 2 m u2 /k B T } Doing all the math using the 3-D speed distribution get exactly the same result, except that we replace 1 2 m u2 by 1 2 m u2 We will use that average-speed expression from here on. But... we know that P = nrt =

Exercise 8: In air at 500 C, what is the r.m.s. speed: (a) of an O 2 molecule? (b) of an N 2 molecule? (c) What are these molecular speeds at a temperature of 1 000 C? 12

Effusion is the escape of gases from a container through a tiny hole. The number of collisions/sec with the (empty!) patch of wall corresponding to the hole will be proportional to the product of the area of the hole the number density (concentration) of molecules in the container the (average) molecular speed Thus, for effusive leakage from a container containing a mixture of gases, the escaping gas may have a different % composition than the original mixture. 13 Exercise 9: If a space capsule in which the air is 0.40 atm of O 2, 0.54 atm of N 2, 0.02 atm of H 2 and 0.04 atm of CH 4 has a tiny hole caused by a meteorite hit, what is the % composition of the escaping air? (Compare this to the % composition of the capsule s air.)

Non-Ideal Gases P According to the ideal gas law, P = nrt or nrt = 1 but this is not exact! Because molecules have finite size, and because there are intermolecular forces, there are deviations from ideality. A simple non-ideal equation of state is the an der Waals equation ) (P + a n2 ( n b) = n R T 2 14 This is an empirical equation; the constant a and b are determined by doing careful fits to experimental P /nrt values. Exercise 10: From fits to data, it has been determined that for CO 2 (g) the an der Waals constants are a = 3.59 atm (L/mol) 2 and b = 0.0427 L/mol. (a) What is the apparent volume of a CO 2 molecule? (b) What is the deviation from ideality (i.e., how much does P /nrt differ from 1. 0?) for CO 2 gas at a pressure of 2. 0 atm and temperature of 100 C?

Alternately, using the theory of statistical mechanics and a knowledge of the intermolecular forces between molecules, physical chemists have derived the irial Equation of State P n R T = 1 + B(T ) ( n ) + C(T ) ( n ) 2 +... 15 in which the virial coefficients B(T ), C(T ),... etc., can be calculated from a knowledge of the forces between the interacting molecules! [ ] B(T ) = 2π N A 1 e (r)/k B T r 2 dr 0 How much of this kinetic theory stuff do you really need to know?