Answer:
[tex]\Delta x = \frac{\lambda}{4\pi}[/tex]
Explanation:
As per de Broglie theory we know that it is given as
[tex]P = \frac{h}{\lambda}[/tex]
now here we can say that by the principle of uncertainty we have
[tex]\Delta x \times \Delta P = \frac{h}{4\pi}[/tex]
now we can use it to find the uncertainty in position as
[tex]\Delta x = \frac{h}{4\pi \Delta P}[/tex]
now plug in the value of momentum as per de Broglie theory
[tex]\Delta x = \frac{h}{4\pi (\frac{h}{\lambda})}[/tex]
[tex]\Delta x = \frac{\lambda}{4\pi}[/tex]
So above is the maximum uncertainty in position in terms of de Broglie wavelength
