Take x > 0. Then for 0 < x < √2, a rectangle circumscribed by the x-axis and the parabola y = 2 - x² has a length of 2x and a height of 2 - x², so its area is
A(x) = 2x (2 - x²)
Differentiate A with respect to x :
A'(x) = 2 (2 - x²) + 2x (-2x)
A'(x) = 4 - 6x²
Find the critical points:
4 - 6x² = 0
6x² = 4
x² = 4/6 = 2/3
x = √(2/3)
Check the sign of the second derivative at this point to confirm that it's a maximum:
A''(x) = -12x
The second derivative is negative for all x > 0, so x = √(2/3) is indeed a maximum.
So the rectangle with maximum area has dimensions
width/length = 2 √(2/3)
height = 2 - (√(2/3))² = 4/3