Match the molecules in List-I with their resp | vedclass

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(A) According to Molecular Orbital Theory $(MOT)$:Bond Order $(B.O.)$ = $\frac{1}{2} (N_b - N_a)$For $Li_2$ ($6$ electrons): $\sigma 1s^2, \sigma^* 1s

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$A-iii, B-i, C-iv, D-v$

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(A) According to Molecular Orbital Theory $(MOT)$:Bond Order $(B.O.)$ = $\frac{1}{2} (N_b - N_a)$For $Li_2$ ($6$ electrons): $\sigma 1s^2, \sigma^* 1s^2, \sigma 2s^2$. $B.O. = \frac{1}{2} (4 - 2) = 1.0$ $(iii)$.For $N_2$ ($14$ electrons): $\sigma 1s^2, \sigma^* 1s^2, \sigma 2s^2, \sigma^* 2s^2, \pi 2p_x^2 = \pi 2p_y^2, \sigma 2p_z^2$. $B.O. = \frac{1}{2} (10 - 4) = 3$ $(i)$.For $Be_2$ ($8$ electrons): $\sigma 1s^2, \sigma^* 1s^2, \sigma 2s^2, \sigma^* 2s^2$. $B.O. = \frac{1}{2} (4 - 4) = 0$ $(iv)$.For $O_2$ ($16$ electrons): $\sigma 1s^2, \sigma^* 1s^2, \sigma 2s^2, \sigma^* 2s^2, \sigma 2p_z^2, \pi 2p_x^2 = \pi 2p_y^2, \pi^* 2p_x^1 = \pi^* 2p_y^1$. $B.O. = \frac{1}{2} (10 - 6) = 2$ $(v)$.Therefore,the correct match is $A-iii, B-i, C-iv, D-v$.

List-$I$	List-$II$
$A. Li_2$	$i. 3$
$B. N_2$	$ii. 1.5$
$C. Be_2$	$iii. 1.0$
$D. O_2$	$iv. 0$
	$v. 2$

Pair of species	Identical property
$A$. $B_2 \& O_2$	$P$. Bond order $= 2.5$
$B$. $Be_2 \& H_2^{2-}$	$Q$. Paramagnetic nature
$C$. $N_2^{+} \& N_2^{-}$	$R$. Diamagnetic nature
$D$. $O_2^{+} \& O_2^{-}$	$S$. Doesn't exist

Match the molecules in List-$I$ with their respective bond orders in List-$II$.
List-$I$ List-$II$
$A. Li_2$ $i. 3$
$B. N_2$ $ii. 1.5$
$C. Be_2$ $iii. 1.0$
$D. O_2$ $iv. 0$
$v. 2$

Similar Questions

Match the following:

Pair of species Identical property

$A$. $B_2 \& O_2$ $P$. Bond order $= 2.5$

$B$. $Be_2 \& H_2^{2-}$ $Q$. Paramagnetic nature

$C$. $N_2^{+} \& N_2^{-}$ $R$. Diamagnetic nature

$D$. $O_2^{+} \& O_2^{-}$ $S$. Doesn't exist

The molecular orbital configuration of a diatomic molecule is
$\sigma 1s^2 \sigma^* 1s^2 \sigma 2s^2 \sigma^* 2s^2 \sigma 2p_x^2 \pi 2p_y^2 \pi 2p_z^2$
Its bond order is

The number of species from the following which are paramagnetic and with bond order equal to $1$ is:
$H_2, He_2^{+}, O_2^{+}, N_2^{2-}, O_2^{2-}, F_2, Ne_2^{+}, B_2$

Using molecular orbital theory,compare the bond energy and magnetic character of $O_2^{+}$ and $O_2^{2-}$ species.

$H_{2}$ molecule is more stable than $Li_{2}$ molecule,because

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Match the molecules in List-$I$ with their respective bond orders in List-$II$.List-$I$List-$II$$A. Li_2$$i. 3$$B. N_2$$ii. 1.5$$C. Be_2$$iii. 1.0$$D. O_2$$iv. 0$$v. 2$