If $x, y and z$ are non-zero real numbers and $a = x i + 2 j, b = y j + 3 k and c = x i + y j + z k$ are such that $a \times b = z i - 3 j + k$ , then $[a b c]$ is equal to:

$3$

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$10$

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$9$

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$6$

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Solution

The correct option is C
$9$

Explanation for the correct option.
Step 1: Find the value of $x, y and z$ .
We have $a = x i + 2 j a n d b = y j + 3 k$ ,so let us present it as
$[\begin{matrix} i & j & k \\ x & 2 & 0 \\ 0 & y & 3 \end{matrix}]$
Now, $a \times b = 6 i - 3 x j + x y k$
It is given that $a \times b = z i - 3 j + k$
$\Rightarrow 6 i - 3 x j + x y k = z i - 3 j + k$
$\Rightarrow z = 6, x = 1, y = 1$
So, $c = i + j + 6 k$
Step 2: Find the value of $[a b c]$ .
$\begin{array}{rcl} [a b c] & = & [a \times b] \times c \\ = & (6 i - 3 x j + x y k) (i + j + 6 k) \\ = & 6 - 3 + 6 \\ = & 9 \end{array}$
Hence, option C is correct.

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