(B) The de-Broglie wavelength $\lambda$ of a charged particle of mass $m$ and charge $q$ accelerated through a potential difference $V$ is given by th

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(B) The de-Broglie wavelength $\lambda$ of a charged particle of mass $m$ and charge $q$ accelerated through a potential difference $V$ is given by the formula:$\lambda = \frac{h}{\sqrt{2mqV}}$Since $h$,$m$,and $q$ are constants for the same particle,we have:$\lambda \propto \frac{1}{\sqrt{V}}$Therefore,the ratio of the wavelengths is:$\frac{\lambda_1}{\lambda_2} = \sqrt{\frac{V_2}{V_1}} = \frac{V_2^{1/2}}{V_1^{1/2}}$This can be written as $V_2^{1/2} : V_1^{1/2}$.

Class 12 Physics Dual Nature of Radiation and matter Matter Waves and de Broglie Wavelength

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$A$ charged particle is accelerated from rest through a certain potential difference. The de-Broglie wavelength is $\lambda_1$ when it is accelerated through $V_1$ and is $\lambda_2$ when accelerated through $V_2$. The ratio $\lambda_1 / \lambda_2$ is

TS EAMCET 2016 All TS EAMCET

A
$V_1^{3/2} : V_2^{3/2}$
B
$V_2^{1/2} : V_1^{1/2}$
C
$V_1^{1/2} : V_2^{1/2}$
D
$V_1^2 : V_2^2$

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Dual Nature of Radiation and matter

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Matter Waves and de Broglie Wavelength

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$A$ charged particle is accelerated from rest through a certain potential difference. The de-Broglie wavelength is $\lambda_1$ when it is accelerated through $V_1$ and is $\lambda_2$ when accelerated through $V_2$. The ratio $\lambda_1 / \lambda_2$ is

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