Given that $P(x) = 125x^3 + 150x^2 + 55x - 6$ use the factor theorem to prove that $(5x + 1)$ is a factor of $P(x)$ - AQA - A-Level Maths Mechanics - Question 13 - 2021 - Paper 1

We know that one factor is $(5x + 1)$. We can perform polynomial long division of $P(x)$ by $(5x + 1)$:

1. Divide the leading term: $125x^3 \div 5x = 25x^2$.
2. Multiply: $(5x + 1)(25x^2) = 125x^3 + 25x^2$.
3. Subtract: $P(x) - (125x^3 + 25x^2)$ results in $125x^2 + 55x - 6$.
4. Repeat with $125x^2 \div 5x = 25x$.
5. Multiply: $(5x + 1)(25x) = 125x^2 + 25x$.
6. Subtract: results in $30x - 6$.
7. Finally, $30x \div 5x = 6$ and multiply to find the next factor.

Hence, from the factors found we get:

From the established factors, substituting yields:

The terms $(5n)$, $(5n + 1)$, and $(5n + 2)$ are three consecutive integers where at least one of them must be a multiple of 3, and at least one is even. Therefore, the product contains a multiple of 2 and 3, ensuring that:

Thus, the expression evaluates as a multiple of 12 when $n$ is a positive whole number.