The electrostatic force between the electron and nucleus is given by:
\[ F = \frac{K(Ze)(e)}{r^2} = \frac{mv^2}{r} \]
Kinetic energy (KE) of the electron is:
\[ \text{KE} = \frac{1}{2}mv^2 = \frac{1}{2} \frac{K(Ze)(e)}{r} \]
Potential energy (PE) is given by:
\[ \text{PE} = -\frac{K(Ze)(e)}{r} \]
Total energy (TE) is:
\[ \text{TE} = \text{KE} + \text{PE} = \frac{K(Ze)(e)}{2r} + \left( -\frac{K(Ze)(e)}{r} \right) = -\frac{K(Ze)(e)}{2r} \]
Thus, the relationship between total energy and potential energy is:
\[ 2 \times \text{TE} = \text{PE} \]
Therefore, \( 2E = U \), which corresponds to Option (4).
Which of the following best represents the temperature versus heat supplied graph for water, in the range of \(-20^\circ\text{C}\) to \(120^\circ\text{C}\)? 
A small block of mass \(m\) slides down from the top of a frictionless inclined surface, while the inclined plane is moving towards left with constant acceleration \(a_0\). The angle between the inclined plane and ground is \(\theta\) and its base length is \(L\). Assuming that initially the small block is at the top of the inclined plane, the time it takes to reach the lowest point of the inclined plane is _______. 
Theratio of the magnitude of the kinetic energy to the potential energy of an electron in the 5th excited state of a hydrogen atom is:
If the binding energy of ground state electron in a hydrogen atom is $136 eV$, then, the energy required to remove the electron from the second excited state of $Li ^{2+}$ will be : $x \times 10^{-1} eV$. The value of $x$ is
For below transition of e–1 of H-atom find out shortest wavelength out of given transition

Which of the following best represents the temperature versus heat supplied graph for water, in the range of \(-20^\circ\text{C}\) to \(120^\circ\text{C}\)? 