Step 1: Understanding Ground State Energy Formula
The ground state energy (\(E_n\)) of a hydrogen-like ion is given by the formula: \[ E_n = - \frac{13.6 Z^2}{n^2} \text{ eV} \] where: - \( Z \) is the atomic number, - \( n \) is the principal quantum number (for ground state, \( n = 1 \)).
Step 2: Calculating for Each Ion
- For Hydrogen (\( H \)), \( Z = 1 \): \[ E_H = -13.6 \times \frac{1^2}{1^2} = -13.6 \text{ eV} \] - For Helium ion (\( He^+ \)), \( Z = 2 \): \[ E_{He^+} = -13.6 \times \frac{2^2}{1^2} = -54.4 \text{ eV} \] - For Lithium ion (\( Li^{2+} \)), \( Z = 3 \): \[ E_{Li^{2+}} = -13.6 \times \frac{3^2}{1^2} = -122.4 \text{ eV} \]
Step 3: Finding the Ratio
\[ E_{Li^{2+}} : E_{He^+} : E_H = 9:4:1 \]
Spherical node shown in figure-1 is best represented by which point in figure-2. 
Which of the following are ambident nucleophiles?
[A.] CN$^{\,-}$
[B.] CH$_{3}$COO$^{\,-}$
[C.] NO$_{2}^{\,-}$
[D.] CH$_{3}$O$^{\,-}$
[E.] NH$_{3}$
Identify the anomers from the following.

The standard Gibbs free energy change \( \Delta G^\circ \) of a cell reaction is \(-301 { kJ/mol}\). What is \( E^\circ \) in volts?
(Given: \( F = 96500 { C/mol}\), \( n = 2 \))