Question

The determinant $\Delta =\left|\begin{array}{ccc}\sqrt{13}+\sqrt{3}& 2\sqrt{5}& \sqrt{5}\\ \sqrt{15}+\sqrt{26}& 5& \sqrt{10}\\ 3+\sqrt{65}& \sqrt{15}& 5\end{array}\right|\text{ equals }$

• A. $15\sqrt{2}-25\sqrt{3}$
• B. $25\sqrt{3}-15\sqrt{2}$
• C. $3\sqrt{5}$
• D. $-15\sqrt{2}+7\sqrt{3}$

Answer 1

Answer: (A)

Taking $\sqrt{5}$ common from $C_2$ and $C_3$, we get
$\Delta =(\sqrt{5}{)}^2\left|\begin{array}{ccc}\sqrt{13}+\sqrt{3}& 2& 1\\ \sqrt{15}+\sqrt{26}& \sqrt{5}& \sqrt{2}\\ 3+\sqrt{65}& \sqrt{3}& \sqrt{5}\end{array}\right|$
Applying $C_1\to C_1-\sqrt{13}{C}_3-\sqrt{3}{C}_2$, we get
$\Delta =(5)\left|\begin{array}{ccc}-\sqrt{3}& 2& 1\\ 0& \sqrt{5}& \sqrt{2}\\ 0& \sqrt{3}& \sqrt{5}\end{array}\right|=5(-\sqrt{3})(5-\sqrt{6})$
$=5(\sqrt{18})-25\sqrt{3}=15\sqrt{2}-25\sqrt{3}$