The mixture contains 62 % one isomer and 38 % the enantiomer.
Let’s say that the mixture contains 62 % of the (R)-isomer.
Then % (S) = 100 % -62 % = 38 %
ee = % (R) - % (S) = 62 % -38 % = 24 %
Answer: The percentage of R-enantiomer is 62 %, the percentage of S-enantiomer is 38 % and the percent enantiomer excess is 24 %
Explanation:
We are given:
A chiral molecule limonene which is 62 % enantiopure.
This molecule has two enantiomers, which are R-limonene and S-limonene.
Let us consider that 62% of the given molecule is R-limonene.
So, the remaining S-limonene will be = (100 - 62) = 38 %
Percent enantiomeric excess is defined as the difference between the percentage major enantiomer and the percentage minor enantiomer.
Mathematically,
[tex]\%\text{ Enantiomer excess}=\%\text{ Major enantiomer}-\%\text{ Minor enantiomer}[/tex]
% major enantiomer = 62 %
% minor enantiomer = 38 %
Putting values in above equation, we get:
[tex]\%\text{ Enantiomer excess}=62\%-38\%=24\%[/tex]
Hence, the percentage of R-enantiomer is 62 %, the percentage of S-enantiomer is 38 % and the percent enantiomer excess is 24 %
