Correct order of dissociation energy of \(N_2\) and \(N_2^+\) is:
\(N_2>N_2^+\)
\(N_2=N_2^+\)
\(N_2^+>N_2\)
\(None\)
The order of dissociation energy between \(N_2\) and \(N_2^+\) can be explained based on molecular and electronic structure.
N2 (Nitrogen Molecule):
N2+ (Nitrogen Cation):
In summary, \(N_2\) has a stronger and more stable triple bond, which means that it requires more energy to dissociate into its constituent nitrogen atoms. \(N_2^+\), on the other hand, has a weaker bond due to the loss of an electron, so it requires less energy for dissociation.
Therefore, the correct order of dissociation energy is option (A) \(N_2 > N_2^+\)

Given below are two statements:
Statement I: Transfer RNAs and ribosomal RNA do not interact with mRNA.
Statement II: RNA interference (RNAi) takes place in all eukaryotic organisms as a method of cellular defence.
In the light of the above statements, choose the most appropriate answer from the options given below:
Such a group of atoms is called a molecule. Obviously, there must be some force that holds these constituent atoms together in the molecules. The attractive force which holds various constituents (atoms, ions, etc.) together in different chemical species is called a chemical bond.
There are 4 types of chemical bonds which are formed by atoms or molecules to yield compounds.