The value of $k$ for which the equation
$3 x^{2} + 2 x (k^{2} + 1) + k^{2} - 3 k + 2 = 0$
has roots of opposite signs, lies in the interval

(1, 2)

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(\frac{3}{2}, 2)

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(- \infty, 0)

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(- \infty, - 1)

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Solution

The correct option is A $(1, 2)$
Given quadratic equation $3 x^{2} + 2 x (k^{2} + 1) + k^{2} - 3 k + 2 = 0$

Now, for the equation $a x^{2} + b x + c = 0$ to have roots of opposite signs $a \cdot c < 0$

Comparing the equations, we get:
$a = 3, c = k^{2} - 3 k + 2$
$∴ for 3 x^{2} + 2 x (k^{2} + 1) + k^{2} - 3 k + 2 = 0$ to have roots of opposite signs,
$3 (k^{2} - 3 k + 2) < 0 \Rightarrow k^{2} - 3 k + 2 < 0 \Rightarrow (k - 1) (k - 2) < 0$

Using wavy curve method we find the required range of $k$

$∴ (k - 1) (k - 2) < 0 \Rightarrow k \in (1, 2)$

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