To determine the energy required to move the electron from its ground state to the first excited state in a hydrogen atom, we first need to understand the energy levels of a hydrogen atom. The energy of an electron in the nth energy level is given by the formula:
En = -13.6 / n2 eV.
In the ground state (n = 1), the energy is:
E1 = -13.6 / 12 = -13.6 eV.
In the first excited state (n = 2), the energy is:
E2 = -13.6 / 22 = -13.6 / 4 = -3.4 eV.
To find the energy required to move the electron from the ground state to the first excited state, we calculate the difference between these two energy levels:
ΔE = E2 - E1 = -3.4 eV - (-13.6 eV) = 10.2 eV.
Thus, the energy required is 10.20 eV.
Identify the taxa that constitute a paraphyletic group in the given phylogenetic tree.
The vector, shown in the figure, has promoter and RBS sequences in the 300 bp region between the restriction sites for enzymes X and Y. There are no other sites for X and Y in the vector. The promoter is directed towards the Y site. The insert containing only an ORF provides 3 fragments after digestion with both enzymes X and Y. The ORF is cloned in the correct orientation in the vector using the single restriction enzyme Y. The size of the largest fragment of the recombinant plasmid expressing the ORF upon digestion with enzyme X is ........... bp. (answer in integer) 