Presentation is loading. Please wait.

Presentation is loading. Please wait.

 G  r (T) = -RTlnK  G  r (T) =  H  r (T) -  S  r (T) How do we evaluate  H  r (T) ? How do we evaluate  S  r (T) ?

Published by Modified over 9 years ago

Similar presentations

Presentation on theme: " G  r (T) = -RTlnK  G  r (T) =  H  r (T) -  S  r (T) How do we evaluate  H  r (T) ? How do we evaluate  S  r (T) ?"— Presentation transcript:

1

2  G  r (T) = -RTlnK  G  r (T) =  H  r (T) -  S  r (T) How do we evaluate  H  r (T) ? How do we evaluate  S  r (T) ?

3

4

5

6

7

8

9

10

11

12

13

14 Since both ethylene and cyclobutane are gases at room temperature and above, all we need is the heat capacity of the gas phase. How do we measure the Cp(g)(298) of benzoic acid (solid), or of methyl salicylate (liquid)?

15

16

17

18

19 Ethylene at 298 K  S f (298) = S ethylene - 2 S f H 2 -2 S fC S ethylene (298) = 219.5 J mol -1 K -1 2 S f H 2 = 2(4.184)(31.2) = 261.2 J mol -1 K -1 2 S fC = 2(4.184)(1.361) = 11.4 J mol -1 K -1  S f (298) (C 2 H 4 ) = 219.5-261.2-11.4 = -53.1 J mol -1 K -1

20 Cyclobutane at 298 K  S f (298) = S cyclobutane - 4 S f H 2 - 4 S fC S cyclobutane (298) = 265.4 J mol -1 K -1 4 S f H 2 = 4(4.184)(31.2) = 522.4 J mol -1 K -1 2 S fC = 2(4.184)(1.361) = 22.8 J mol -1 K -1  S f (298) (C 4 H 8 ) = 265.4-522.4-22.8 = -279.8 J mol -1 K -1

21  S f (298) (C 4 H 8 ) = -279.8 J mol -1 K -1  S f (298) (C 2 H 4 ) = -53.1 J mol -1 K -1 Cyclobutane  2 ethylene  S r (298) = 2(-53.1) - (-279.8) = 173.6 J mol -1 K -1  S r (298) = 2 S ethylene - S cyclobutane  S r (298) = 2(219.5) - 265.4 = 173.6

22  G f (298) =  H f (298) - T  S f (298) Ethylene:  H f (298) = 52300;  S f (298) = -53.1  G f (298) = 52300 - (298)(-53.1) = 68130 J mol -1 Cyclobutane:  H f (298) = 28400;  S f (298) = -279.8  G f (298) = 28400 - (298)(-279.8) = 111780 J mol -1 Cyclobutane  2 ethylene  G r (298) = 2(68.13) - 111.78 = 24.5 kJ mol -1  G r (298) = 76200 - (298)(173.6) = 24.5 kJ mol -1

23 S ethylene (773) S ethylene (298) = 219.5 J mol -1 K -1 S ethylene (773) = S ethylene (298) + S ethylene (773) = S ethylene (298) + Cp(g) ln(773/298) S ethylene (773) = 219.5 + 63.9 = 283.4 J mol -1 K -1 Cp(g) = 67 J mol -1 K -1 Ethylene

24 S cyclobutane (298) = 265.4 J mol -1 K -1 S cyclobutane (773) = S cyclobutane (298) + Cp(g)ln(773/298) S cyclobutane (773) = 265.4 + 128.7 = 394 J mol -1 K -1 Cyclobutane Cp(g) = 135 J mol -1 K -1

25  G f (773) =  H f (773) - T  S (773) Ethylene:  H f (773) = 84125; S (773) = -283.4 Cyclobutane:  H f (773) = 92525; S (773) = -394  G f (773) =  H f (773) - T  S (773)  G f (773) = 2(84125)-92525-T[2(-283.4)-(-394)]  G f (773) = 75700 - (773)(-172.8) = -57850 J mol -1

Download ppt " G  r (T) = -RTlnK  G  r (T) =  H  r (T) -  S  r (T) How do we evaluate  H  r (T) ? How do we evaluate  S  r (T) ?"

Similar presentations

Question Can water boil at room temperature?. How do We Interpret Phase Diagrams?

Question Can water boil at room temperature?. How do We Interpret Phase Diagrams?
Liquids and Solids Water.

Liquids and Solids Water.
We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
What happens when we add energy to a solid at constant pressure gas.

What happens when we add energy to a solid at constant pressure gas.
Heating/Cooling Curve and Phase Diagrams

Heating/Cooling Curve and Phase Diagrams
Ch. 8 - Solids, Liquids, & Gases II. Changes in State (p.224-227)  Phase Changes  Heating Curves MATTER.

Ch. 8 - Solids, Liquids, & Gases II. Changes in State (p )  Phase Changes  Heating Curves MATTER.
GASES Question 2: 1995 B Free Response Park, Sherrie Gangluff, per. ¾ AP Chemistry.

GASES Question 2: 1995 B Free Response Park, Sherrie Gangluff, per. ¾ AP Chemistry.
Sublimation! As illustrated through the addition of heat energy (created by Kasey Nakajima)

Sublimation! As illustrated through the addition of heat energy (created by Kasey Nakajima)
Properties and characteristics All matter is classified as one of three physical states of matter. SOLID LIQUID GAS.

Properties and characteristics All matter is classified as one of three physical states of matter. SOLID LIQUID GAS.
Calculating internal energy and enthalpy changes.

Calculating internal energy and enthalpy changes.
Homework How many molecules are in 6 moles of CO2?

Homework How many molecules are in 6 moles of CO2?
21-2-2011. Clausius – Clapeyron Equation This equation is a relation between  H vap and pressure at a certain Temperature.

Clausius – Clapeyron Equation This equation is a relation between  H vap and pressure at a certain Temperature.
Water and Its Phase Changes Wednesday, February 20, 2008 Homework: Due Thursday Page 514, #9, 19, 21, 22, 23.

Water and Its Phase Changes Wednesday, February 20, 2008 Homework: Due Thursday Page 514, #9, 19, 21, 22, 23.
Isodesmic Reactions Isodesmic Reactions: chemical changes in which there is a net formal retention of the number of bonds (groups) but a change in their.

Isodesmic Reactions Isodesmic Reactions: chemical changes in which there is a net formal retention of the number of bonds (groups) but a change in their.
Lecture 3411/30/05. Vapor pressure vs. boiling point?

Lecture 3411/30/05. Vapor pressure vs. boiling point?
∆H = H final - H initial The stoichiometric coefficients in thermochemical equations must be interpreted as numbers of moles. 1 mol of C 5 H 12 reacts.

∆H = H final - H initial The stoichiometric coefficients in thermochemical equations must be interpreted as numbers of moles. 1 mol of C 5 H 12 reacts.
Bomb Calorimeters – Big Budget! Bomb calorimeters are big and expensive devices. They have large heat capacities and often contain water - which serves.

Bomb Calorimeters – Big Budget! Bomb calorimeters are big and expensive devices. They have large heat capacities and often contain water - which serves.
Phase Changes Melting Vaporization Condensation Freezing Sublimation.

Phase Changes Melting Vaporization Condensation Freezing Sublimation.
Practice Energy Calculation Quiz. How much energy does it take to convert 722 grams of ice at  211  C to steam at 675  C? (Be sure to draw and label.

Practice Energy Calculation Quiz. How much energy does it take to convert 722 grams of ice at  211  C to steam at 675  C? (Be sure to draw and label.
A 3.51 g sample of benzene, C 6 H 6, was burned in a bomb calorimeter in an excess of oxygen. The initial temperature was 25.00 o C and rose to 37.18.

A 3.51 g sample of benzene, C 6 H 6, was burned in a bomb calorimeter in an excess of oxygen. The initial temperature was o C and rose to

Similar presentations

Ads by Google