Hi.
I am working on a problem, and first, I am supposed to draw all of the Newman projection diagrams for the staggered conformational isomers of 2-methylpropane. There is only one way that it can be drawn though, right? Because the methyl group can only go on position 2, or it would become a butane. I will attach my diagrams that I drew. I also needed to draw the eclipsed conformation of 2-methylpropane, and I have attached that as well.
Finally, I am given the informationthat the torsional strain resulting from the eclipsed C-H bonds is 4.2 kJ/mol, and that for eclipsed C-H and C-CH3 bonds are 6.3 kJ/mol. Given this information, how do you calculate the torsional strain energy for the eclipsed conformation?
Do you add the energies together? For example, since there are 2 eclipsed C-H and C-CH3 bonds and only one eclipsed C-H bonds, would you add 4.2 + 6.3 + 6.3? This would give a total torsional strain energy of 16.8 kJ/mol.
I am searching through my textbook, but it doesn't seem to give any insight as to how to calculate the total energy. I would appreciate if someone could tell me if I have done this problem right, and if I haven't, to give me some insight to get me going in the right direction.
Thank you in advance! I greatly appreciate any help I can get
-Melissa
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Topic: 2-methylpropane newman projection, torsional strain (Read 17603 times)