Question

The specific rotation of two glucose anomers are $\alpha =+{110}^o$ and $\beta =+{19}^o$ and for the constant equilibrium mixture it is $+{52.7}^o.$ Calculate the per cent composition of anomers in the equilibrium mixture.

• A. a-anomer = 36.2% and b-anomer = 63.8%
• B. a-anomer= 63.8% and a-anomer = 36.2%
  
• C. a-anomer =70% and b-anomer =30%
  
• D. a-anomer = 30% and b-anomer = 70%
  

Answer 1

The correct option is A a-anomer = 36.2% and b-anomer = 63.8%

Let a and b be the mole fractions of $\alpha$ and $\beta -$ anomers in equilibrium mixture. Thus,
$a+b=1...\left(i\right)$
${110}^{o}a+{19}^{o}b={52.7}^o...\left(ii\right)$
Solving both equations, we get $a=0.362$ and $b=0.638$