Solve the following exponential equation. Express irrational solutions in exact form. \[ 2^{2 x}+2^{x+1}-35=0 \]

To solve the exponential equation \( 2^{2x} + 2^{x+1} - 35 = 0 \), we start by rewriting \( 2^{2x} \) using the identity \( 2^{2x} = (2^x)^2 \). Let \( y = 2^x \). Then, the equation becomes: \[ y^2 + 2y - 35 = 0 \] This is a quadratic equation in \( y \). We can solve it using the quadratic formula: \[ y = \frac{-b \pm \sqrt{b^2 - 4ac}}{2a} \] For our equation, \( a = 1 \), \( b = 2 \), and \( c = -35 \). Plugging in these values: \[ y = \frac{-2 \pm \sqrt{2^2 - 4 \cdot 1 \cdot (-35)}}{2 \cdot 1} \] \[ y = \frac{-2 \pm \sqrt{4 + 140}}{2} \] \[ y = \frac{-2 \pm \sqrt{144}}{2} \] \[ y = \frac{-2 \pm 12}{2} \] Now, we find the two possible values for \( y \): 1. \( y = \frac{10}{2} = 5 \) 2. \( y = \frac{-14}{2} = -7 \) (not a valid solution, since \( y = 2^x \) must be positive) This leaves us with \( y = 5 \). Now we substitute back to find \( x \): \[ 2^x = 5 \] Taking the logarithm of both sides: \[ x = \log_2(5) \] Thus, the solution to the equation \( 2^{2x} + 2^{x+1} - 35 = 0 \) is: \[ x = \log_2(5) \]