Unit 13 Thermochemistry

About This Presentation

Title:

Unit 13 Thermochemistry

Description:

CHM 1046: General Chemistry and Qualitative Analysis Unit 13 Thermochemistry Dr. Jorge L. Alonso Miami-Dade College Kendall Campus Miami, FL Textbook Reference: – PowerPoint PPT presentation

Number of Views:246

Avg rating:3.0/5.0

Slides: 52

Provided by: JohnB397

Category:

more less

Transcript and Presenter's Notes

Title: Unit 13 Thermochemistry

1
Unit 13Thermochemistry
CHM 1046 General Chemistry and Qualitative
Analysis

Dr. Jorge L. Alonso
Miami-Dade College Kendall Campus
Miami, FL

Textbook Reference
Chapter 15 (sec. 1-11)
Module 3 (sec. I-VIII)

2
Energy

Potential Energy an object possesses by virtue
of its position or chemical composition (bonds).

2 C8H18 (l) 25 O2 (g)
16 CO2(g) 18 H2O(g)
Chemical bond energy
Energy (-?E) work heat
Kinetic Energy an object possesses by virtue of
its motion.
3
Energy
Chemical bond energy
?? gas25?34 9?
9? x 22.4L/? 202 L
2 C8H18 (l) 25 O2 (g)
16 CO2(g) 18 H2O(g)

?H - 5.5 x 106 kJ/?
Energy produced by chemical reactions heat or
work.

Heat (q) spontaneous transfer (flow) of energy
(energy in transit) from one object to another
causes molecular motion vibrations (kinetic
energy) measured as temperature.

Work (w) Energy (force) used to cause an object
that has mass to move (a distance) kinetic
energy.

W F x d
q w
?E
Law of Conservation of Energy
4
Units of Energy Joule calorie

The joule (J) SI unit of energy (work)
The calorie (cal)
heat required to raise 1 g of H2O 10C
1 cal 4.184 J
Nutritional Calorie 1000 calories
(1kcal)4,184 J.

Energy (Work) F x d
Joule (J) Nm
m
The Newton (N) is the amount of force that is
required to accelerate a kilogram of mass at a
rate of one meter per second squared.
5
System and Surroundings

The system includes the molecules we want to
study.
The surroundings are everything else (here, the
cylinder and piston).

Work
-?Ework
?Ew
Heat
System
-?Eq(heat)
?Eq
?E q w
Surroundings
6
First Law of Thermodynamics

Energy is neither created nor destroyed.

Also known as the Law of Conservation of Energy

Work

In other words, the total energy of the universe
is a constant if the system loses energy, it
must be gained by the surroundings, and vice
versa.

-?Ew
?Ew
UNIVERSE
Heat
System
-?Eq
?Esys ?Esurr 0
?Eq
?Esys -?Esurr
or ?E sys (q w)surr
Surroundings
7
Changes in Internal Energy (?E)
energy released/absorbed as either work or
heat, is looked at from the perspective of the
system (the chemicals)
?E, q, w, and Their Signs
q
- q
gt q
Syst looses heat
Syst gains heat
gt w
w
- w
Work done by Syst

?E q w

Work done on Syst
q
w
?E
- q
- w
- ?E
q
w
?E
8
Why consider Energy Change (?E) and not the total
Internal Energy (E)?
?Esys ?Esurr 0
Esys Esurr ETotal (constant)

Total Internal Energy (E) the sum of all
kinetic and potential energies of all components
of the system. How can it be determined?

Usually we have no way of knowing the total
internal energy of a system finding that value
is simply too complex a problem.

But when a change occurs we can measure the
change in internal energy
?E Efinal - Einitial

9
Energy as Work (w) of Gas Expansion
F P A
Work - (Force x distance)
w - (F x ?h)
w - (P x A x ?h)
w - P ?V (_at_ constant P)
w - ?nRT (_at_ constant V)
WorkGasExpansion
10
Exchange of Heat (?H) by chemical systems

When heat is released by the system to the
surroundings, the process is exothermic.

- ?H
q

When heat is absorbed by the system from the
surroundings, the process is endothermic.

?H
q
11
Enthalpies of Reaction (?H)
Reactants

The change in enthalpy, ?H, is the enthalpy of
the products minus the enthalpy of the reactants
?H Hproducts - Hreactants

This quantity, ?H, is called the enthalpy of
reaction, or the heat of reaction.
Products
Notice it is the same value, but of opposite sign
for the reverse reaction
12
State Functions

Are ?E, q and w all state functions?

A state function depends only on the present
state of the system, not on the path by which the
system arrived at that state.

?E qw

However, q and w are not state functions.

Other state functions are P, V and T.

13
Calorimetry

The experimental methods of measuring of heats
(?H) involved in chemical reactions

Methods utilized
Constant Pressure Calorimetry (open container in
contact with atmosphere)
Constant Volume Calorimetry closed container
(bomb)

1 atm
14
Thermochemical Equations
2 C8H18 (l) 25 O2 (g)
16 CO2(g) 18 H2O(g)
?H - 5.5 x 106 kJ/? C8H18

?H is per mole of reactant, at the indicated
states (s, l, g).
Direct quantitative relationship between
coefficients of balanced equation and ?H.
Reverse equation has ?H of opposite sign.

Problem Calculate ?H when 25g of C8H18 (l) (MM
114) are burned in excess oxygen?
15
(1) Calorimetry at Constant Pressure

Most chemical reactions are carried out in
beakers or flasks that are open to the
atmosphere (i.e., at constant pressure,
isobaric).

?E q w
1 atm
?E qp - P?V
SOLVE FOR
?E P?V qp
q m ? c ? ?T
qp Heat of Reaction DH or
Enthalpy of Reaction
?E P?V ?H
Big Problem calorimeter also absorbs heat
?H ?E P?V
?H ?Epv
? and when the volume is constant
16
(a) Determining the Heat Capacity of a Calorimeter
50 mL of H2O _at_ 650C are added.
50 mL H2O
50 mL H2O
..to 50 mL of H2O _at_ 250C inside the calorimeter
The final temperature of the 100 mL of H2O inside
the calorimeter is 420C
Heat lost by heat gained by heat gained
by hot water cold water
calorimeter
qhot qcold qcalorimeter
17
Determining the Heat Capacity of a Calorimeter
(Ccal)
qhot qcold qcalorimeter
(mc?T)H2O (mc?T)H2O (Ccal ?T)
Includes both the mass and heat capacity
(mc?T)H2O - (mc?T)H2O
(?T)cal
Ccal
18
(b) Calculating the Heats of Reactions
(?H)
HCl(aq) NaOH(aq) ? NaCl(aq) H2O(l)
50 mL_at_25C 50 mL_at_25C ? 100
mL of NaCl(aq) _at_ 30C
Heat of heat gained by
heat gained by reaction NaCl solution
calorimeter
?H(qrxn) qNaCl soln qcal
qrxn (mc?T)NaClsoln (Ccal?T)
qrxn - ?Hrxn heat of
neutralization rxn
How do you determine the cNaCl soln?
19
How do you determine the cNaCl soln?
50 mL of H2O _at_ 650C are added.
50 mL H2O
50 mL NaCl soln
..to 50 mL of NaCl solution _at_ 250C inside the
calorimeter
The final temperature of the 100 mL of solution
inside the calorimeter is 410C
Heat lost by heat gained by heat gained
by hot water salt water soln
calorimeter
qh qNaClsoln qcal
(mc?T)H2O (mc?T)NaClsoln (Ccal?T)
20
(2) Calorimetry at Constant Volume (Bomb Cal.)
?E q w

w P ?V
?V 0
w 0

?E qv
q m ? c ? ?T
Bomb calorimeter
21
Bomb Calorimetry

Because the volume in the bomb calorimeter is
constant, what is measured is really the change
in internal energy, ?E, not ?H.
For most reactions, the difference is very small.

?E qv
?H ?E ?nRT
22
Review of Thermochemical Equations
?E q w
?E qp - P?V
?E qp - ?nRT
since ?H qp
?E ?H - P?V
1 atm
?H ?E P?V
?E q w
?E qv
23
Comparing ?H and ?E
?H ?E P?V
2 C8H18 (l) 25 O2 (g)
16 CO2(g) 18 H2O(g)
?H - 5.5 x 106 kJ/?
?E ?H - P?V (useful at const P)
?E ?H - ?nRT (useful at const V)
Problem calculate ?E _at_ 25C for above equation _at_
const. V R 8.314J/K?.
?? gas34-25 9? 4.5? C8H18
24
Constant-Volume Calorimetry

Problem When one mole of CH4 (g) was combusted
at 250C in a bomb calorimeter, 886 kJ of energy
were released. What is the enthalpy change for
this reaction?

CH4 (g) 2 O2 (g)
CO2(g) 2 H2O(l)
?E qv - 886 kJ R 8.31 J/ ?.K ?n 1 (12)
-2 ?
?H ?E P?V ?E ?nRT
25
Energy in Foods

Most of the fuel in the food we eat comes from
carbohydrates fats.

26
Methods of determining ?H

Calorimetry (experimental)
Hesss Law using Standard Enthalpy of Reaction
(?Hrxn) of a series of reaction steps (indirect
method).
Standard Enthalpy of Formation (?Hf ) used with
Hesss Law (direct method)
Bond Energies used with Hesss Law

?
Experimental data combined with theoretical
concepts
?
27
(2) Determination of ?H using Hesss Law

?Hrxn is well known for many reactions, but it is
inconvenient to measure ?Hrxn for every reaction.

However, we can estimate ?Hrxn for a reaction of
interest by using ?Hrxn values that are published
for other more common reactions.

The Standard Enthalpy of Reaction (?Hrxn) of a
series of reaction steps are added to lead to
reaction of interest (indirect method).

Standard conditions (25C and 1.00 atm
pressure). (STP for gases T 0C)
?
28
Hesss Law

If a reaction is carried out in a series of
steps, ?H for the overall reaction will be equal
to the sum of the enthalpy changes for the
individual steps.

- 1840, Germain Henri Hess (180250), Swiss
29
Calculation of ?H by Hesss Law
3 C(graphite) 4 H2 (g) ?? C3H8 (g) ?H
-104 3 C(graphite) 3 O2 (g) ?? 3 CO2 (g)
?H-1181 4 H2 (g) 2 O2 (g) ?? 4 H2O (l)
?H-1143
C3H8 (g) ?? 3 C(graphite) 4 H2 (g) ?H 104
C3H8 (g) 5 O2 (g) ?? 3 CO2 (g) 4 H2O (l)

Appropriate set of Equations with their ?H values
are obtained (or given), which containing
chemicals in common with equation whose ?H is
desired.
These Equations are all added to give you the
desired equation.
These Equations may be reversed to give you the
desired results (changing the sign of ?H).
You may have to multiply the equations by a
factor that makes them balanced in relation to
each other.
Elimination of common terms that appear on both
sides of the equation .

30
Calculation of ?H by Hesss Law
3 C(graphite) 3 O2 (g) ?? 3 CO2 (g)
?H-1181 4 H2 (g) 2 O2 (g) ?? 4 H2O (l)
?H-1143
C3H8 (g) ?? 3 C(graphite) 4 H2 (g) ?H 104

?Hrxn
104 kJ
1181 kJ
1143 kJ
2220 kJ

C3H8 (g) 5 O2 (g) ?? 3 CO2 (g) 4 H2O (l)
31
Calculation of ?H by Hesss Law

Calculate heat of reaction
W C (graphite) ? WC (s) ?H ?
Given data
2 W(s) 3 O2 (g) ? 2 WO3 (s) ?H -1680.6 kJ
C (graphite) O2 (g) ? CO2 (g) ?H -393.5
kJ
2 WC (s) 5 O2 (g) ? 2 WO3 (s) CO2 (g) ?H
-2391.6 kJ

½(2 W(s) 3 O2 (g) ? 2 WO3 (s) ) ½(?H
-1680.6 kJ)
W(s) 3/2 O2 (g) ? WO3 (s) ) ?H -840.3 kJ
C (graphite) O2 (g) ? CO2 (g) ?H -393.5
kJ
½(2 WO3 (s) CO2 (g) ? 2 WC (s) 5 O2 (g))
½ (?H 2391.6 kJ)
WO3 (s) CO2 (g) ? WC (s) 5/2 O2 (g) ?H
1195.8 kJ)
W C (graphite) ? WC (s) ?H - 38.0
32
Hesss Law
Problem Chloroform, CHCl3, is formed by the
following reaction Desired ?Hrxn equation
CH4 (g) 3 Cl2 (g) ? 3 HCl (g) CHCl3 (g)
Determine the enthalpy change for this reaction
(?Hrxn), using the following 2 C (graphite)
H2 (g) 3Cl2 (g) ? 2CHCl3 (g)?Hf 103.1
kJ/mol CH4 (g) 2 O2 (g) ? 2 H2O (l) CO2
(g) ?Hrxn 890.4 kJ/mol 2 HCl (g) ? H2 (g)
Cl2 (g) ?Hrxn 184.6 kJ/mol C (graphite)
O2 (g) ? CO2(g) ?Hrxn 393.5 kJ/mol H2 (g)
½ O2 (g) ? H2O (l) ?Hrxn 285.8
kJ/mol answers a) 103.1 kJ b) 145.4
kJ c) 145.4 kJ d) 305.2 kJ
e) 305.2 kJ f) 103.1 kJ This is a
hard question. To make is easer give C
(graphite) ½ H2(g) 3/2 Cl2(g) ? CHCl3(g) ?Hf
103.1 kJ/mol
33
Methods of determining ?H

Calorimetry (experimental)
Hesss Law using Standard Enthalpy of Reaction
(?Hrxn) of a series of reaction steps (indirect
method).
Standard Enthalpy of Formation (?Hf ) used with
Hesss Law (direct method)
Bond Energies used with Hesss Law

?
Experimental data combined with theoretical
concepts
?
34
(3) Determination of ?H using Standard
Enthalpies of Formation (?Hf )
?
Enthalpy of formation, ?Hf, is defined as the
enthalpy change for the reaction in which a
compound is made from its constituent elements in
their elemental forms.
?
C O2 ? CO2 ?Hf -393.5 kJ/ ?
?

Standard Enthalpy of formation ?Hf are measured
under standard conditions (25C and 1.00 atm
pressure).

35
Calculation of ?H
CH4(g) O2(g) ? CO2(g) H2O(g)
C 2H2(g) ? CH4(g) ?Hf -74.8 kJ/?
C(g) O2(g) ? CO2(g) ?Hf -393.5
kJ/?
2H2(g) O2(g) ? 2H2O(g) ?Hf -241.8
kJ/?

We can use Hesss law in this way
?H ??n??Hf(products) - ??m??Hf(reactants)
where n and m are the stoichiometric
coefficients.

?
?
-
n CH4(g) n O2(g)
n CO2(g) n H2O(g)
??????H 1(-393.5 kJ) 1(-241.8 kJ) -
1(-74.8 kJ) 1(-0 kJ) - 560.5 kJ
36
Calculation of ?H
C3H8 (g) 5 O2 (g) ?? 3 CO2 (g) 4 H2O (l)
?H ??n??Hf(products) - ??m??Hf(reactants)

??????H 3(-393.5 kJ) 4(-285.8 kJ) -
1(-103.85 kJ) 5(0 kJ)
(-1180.5 kJ) (-1143.2 kJ) - (-103.85
kJ) (0 kJ)
(-2323.7 kJ) - (-103.85 kJ)
-2219.9 kJ

Table of Standard Enthalpy of formation, ?Hf
37
(4) Determination of ?H using Bond Energies

Most simply, the strength of a bond is measured
by determining how much energy is required to
break the bond.
This is the bond enthalpy.
The bond enthalpy for a ClCl bond,
D(ClCl), is measured to be 242 kJ/mol.

38
Average Bond Enthalpies (H)

Average bond enthalpies are positive, because
bond breaking is an endothermic process.

NOTE These are average bond enthalpies, not
absolute bond enthalpies the CH bonds in
methane, CH4, will be a bit different than the
CH bond in chloroform, CHCl3.

39
Enthalpies of Reaction (?H )