Assume that $a$ and $b$ are integers such that a^2 - 4b - 2 = 0 9 (a) Prove that $a$ is even - AQA - A-Level Maths Pure - Question 9 - 2022 - Paper 3

From the previous step, we established that $a$ is even. Now substitute $a$ as follows:

$a = 2k$

for some integer $k$. Substituting into our equation yields:

$(2k)^2 - 4b - 2 = 0$

Calculating gives:

$4k^2 - 4b - 2 = 0$

Rearranging leads to:

$4k^2 - 2 = 4b$

Dividing through by $2$ results in:

$2k^2 - 1 = 2b$

This implies that:

$2b + 1 = 2k^2$

Since $2k^2$ is even, $2b + 1$ must also be odd. This means that $2b + 1$ being odd contradicts the original assumption that both $b$ and $a$ are integers, leading to a conclusion that the assumption of $a$ as even must be incorrect.

Considering the deductions made in the previous parts, particularly part (b), we conclude that there are no integer solutions to the equation

a^2 - 4b - 2 = 0.

This is because it leads to a contradiction regarding the integer nature of $2b + 1$. Thus, the only valid conclusion is that no integers $a$ and $b$ can satisfy this equation.