Explanation

To show that \(\lambda\) = \(\frac{\text{h}}{\sqrt{2meV_o}}\)

The de broglie wavelength \(\lambda\), is given by 

\(\lambda\) = \(\frac{\text{h}}{\text{p}}\)

where p = mv

\(\lambda\) = \(\frac{\text{h}}{\text{mv}}\)

When an electron is accelerated through a potential difference V\(_0\), it gains kinetic energy given K.E.= eV\(_0\)

The kinetic energy can also be expressed in terms of the mass m of the electron and its speed v: K.E = \(\frac{1}{2}\)mv\(^2\)

K.E = eV\(_0\) = \(\frac{1}{2}\)mv\(^2\)

v = \(\sqrt{\frac{2eV_o}{m}}\)

Substituting v =  \(\sqrt{\frac{2eV_o}{m}}\) into the de Broglie equation

\(\lambda\) = \(\frac{\text{h}}{m \times \sqrt{\frac{2eV_o}{m}}}\) = \(\frac{\text{h}}{\sqrt{\frac{2eV_o m^2}{m}}}\)

\(\lambda\) =  \(\frac{\text{h}}{\sqrt{2meV_o}}\)

Note: use the fact that \(\sqrt{m}\) x \(\sqrt{m}\) = m 

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