experiment 3: stereochemistry and molecular modeling of cycloalkanes

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Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

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Page 1: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

Experiment 3:

STEREOCHEMISTRY AND MOLECULAR MODELING OF

CYCLOALKANES

Page 2: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

This experiment is NOT in the current edition of the lab manual.

Each student should print a copy of the FINAL LAB REPORT sheet accessible on the Blackboard Learn course website and bring it to lab to complete.

Molecular model kits will be provided for assistance, or students can bring their own to lab.

There is no other PRE lab or POST lab assignment for this experiment, just the completion of the FINAL LAB REPORT sheet.

THE LAB REPORT…

Page 3: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

OBJECTIVES

To practice drawing cyclohexane rings in chair conformations, and learn how to recognize axial and equatorial positions.

To practice drawing monosubstituted and disubstituted cyclohexane rings in both chair conformations.

To learn how to compare the stability of chair conformations, and identify which conformer is favored at equilibrium.

Page 4: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

THE LAB REPORT…

Fill in the blanks using a single term from the list at the top. Use textbook for assistance if necessary.

Page 5: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

How to Draw Cyclohexane

1. Draw a wide V. 2. Draw a line going down at a 60o angle, ending just before the center of the V.

3. Draw a line parallel to the left side of the V ending just before the left side of the V.

4. Draw a line parallel to the line from step 2, going down exactly as low as that line.

5. Connect the dots.

Page 6: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

THE LAB REPORT…Follow instructions given for all problems.

Page 7: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

How to Draw the Axial and Equatorial

Hydrogens

2. Draw all equatorial positions as pairs of parallel lines.

SUMMARY: All substituents are drawn like this:

1. Draw all axial positions as parallel lines, alternating in directions.

parallel with this side!

a a

a a

a

a

eeee

e

e

Page 8: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

THE LAB REPORT…Follow instructions given for all problems.

Page 9: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

Conformational Mobility of Cyclohexane-Ring

Flips

Page 10: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

Conformations of Monosubstituted

Cyclohexanes

Although ring-flip occurs rapidly, the two conformers are not EQUAL!

This conformer has more diaxial interactions,

therefore is higher in energy!

Page 11: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

1,3-Diaxial Interactions

Q: What causes the difference in energy between the conformers? Steric strain due to 1,3-diaxial interactions.

Q: What is a 1,3-diaxial interaction? Atoms on C1 are too close to those on C3 and C5!

Page 12: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

Drawing Both Chair Conformations:

Monosubstituted rings 1. Draw a chair conformation. 2. Place the substituent in an

axial position.Br

axial

1

2

3. Draw the ring flip and the axial group becomes equatorial.

Br

axialBr

equatorial

1

12

2

Page 13: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

THE LAB REPORT…Follow instructions given for all problems.

Page 14: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

Drawing Both Chair Conformations:

Disubstituted rings 1. Using a numbering system, determine the location and configuration of each substituent. Draw the structure using solid and dashed lines to indicate relative (cis vs. trans) stereochemistry.

Br

CH2CH3

Bromine is at C-1 and is UP

Ethyl is at C-3and is DOWN

12

3

2. Place the substituents on the first chair using the info from step 1.

Br

H

CH2CH3

H1

23

3. Draw the second chair skeleton, and place the substituents using the info from step 1.

Br

HCH2CH3

H 12

3

Page 15: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

THE LAB REPORT…Follow instructions given for all problems.

Page 16: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

Conformational Analysis of Disubstituted

Cyclohexanes

Q: What is conformational analysis? Assessing energy of cycloalkane by summing all

steric interactions.

Q: Why is it important? Can help predict which conformations are more

favorable and more likely to exist.

Page 17: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

THE LAB REPORT…Follow instructions given for all problems.

Page 18: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

THE LAB REPORT…This table is given on the last page of the lab report…

Page 19: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

OVERVIEW Review concepts.

Draw a chair conformation of cyclohexane.

Draw and label axial and equatorial positions on a chair conformation of cyclohexane.

Draw chair conformation of monosubstituted cyclohexane before and after ring flip.

Draw chair conformations of disubstituted cyclohexanes before and after ring flip.

Compare stability of chair conformations and predict major conformer.

Page 20: Experiment 3: STEREOCHEMISTRY AND MOLECULAR MODELING OF CYCLOALKANES

Just a suggestion…

BRING YOUR TEXTBOOK WITH

YOU TO LAB! (IT MAY HELP !)