Let’s break this down step by step to determine the correct order of bond lengths and why option (4) is the correct answer.
Step 1: Understand the factors affecting bond lengths
Bond length depends on:
Typical bond lengths (in pm):
Step 2: Compare the bond lengths
Order of increasing bond lengths:
\[ \text{H--H}<\text{O--H}<\text{C--H}<\text{C--C} \]
Step 3: Confirm the correct answer
The order matches option (4).
Thus, the correct answer is (4) H--H $<$ O--H $<$ C--H $<$ C--C.
Identify the correct orders against the property mentioned:
A. H$_2$O $>$ NH$_3$ $>$ CHCl$_3$ - dipole moment
B. XeF$_4$ $>$ XeO$_3$ $>$ XeF$_2$ - number of lone pairs on central atom
C. O–H $>$ C–H $>$ N–O - bond length
D. N$_2$>O$_2$>H$_2$ - bond enthalpy
Choose the correct answer from the options given below: