Answer:
The Rate of Enzyme activity for this sample after 10 minutes will be -3.028
Explanation:
k = [tex]\frac{1}{t}\times ln(C-C0)[/tex]
Where, t= time , C= final concentration , C₀= initial concentration
k = [tex]\frac{1}{5}\times ln (0.44-0.22)[/tex] per minute
= [tex]\frac{1}{5}\times ln (0.22)[/tex] per min
= [tex]\frac{1}{5}\times (-1.514)[/tex] per min
k = -0.3028 per minute
k in A per minute is = -0.3028
k in A per 10 minutes will be = 10× (-0.3028)
= - 3.028
