Home
Class 12
CHEMISTRY
Two particles A and B are in motion. If ...

Two particles A and B are in motion. If the wavelength associated with the particle A is `5 xx 10^(-8) m` , calculate the wavelength of particle B, if its momentum is half of A.

Text Solution

Verified by Experts

According to de-Broglie relation,
`lamda = h/p " or " p = h/lamda `
for particle A , `p_A= (h)/(lamda_A)`
Here, `p_A` and `lamda_A` are the momentum and wavelength of particle A.
for particle B `p_B = (h)/(lamda_B)`
Here` p_B` and `lamda_B` are the momentum and wavelength of particle B.
But `p_B = 1/2 p_A`
` therefore (h)/(lamda_B) = 1/2 (h)/(lamda_A)`
`(lamda_A)/(lamda_B) = 1/2 ` or `lamda_B = 2lamda_A`
But `lamda_A = 5 xx 10^(-8) m`
`lamda_B = 2lamda_A = 2 xx 5 xx 10^(-8) m = 10 xx 10^(-8) m = 10^(-7) m`
Promotional Banner

Topper's Solved these Questions

  • ATOMIC STRUCTURE - II

    NCERT TAMIL|Exercise EXAMPLE|5 Videos
  • ATOMIC STRUCTURE - II

    NCERT TAMIL|Exercise PROBLEM FOR PRACTICE|14 Videos
  • BIOMOLECULES

    NCERT TAMIL|Exercise EVALUATION (Choose the correct answer)|21 Videos

Similar Questions

Explore conceptually related problems

Calculate the de Broglie wavelength associated with a proton of kinetic energy 8xx10^(-17)J .

In which of the following cases the heavier of the two particles has a smaller de-Broglie wavelength ? The two particles

The de- Broglie wavelength of a particle of kinetic energy K is lambda what would be the wavelength of the particle, if its kinetic energy were K/4 ?

Calculate the De-Broglie wavelength of a particle whose momentum is 66.26 xx 10^(-28) kg ms^(-1) .

A particle is moving three times as fast as an electron. The ratio of the de Broglie wavelength of the particle to that of the electron is 1.813xx10^(-4) . Calculate the particle's mass and identify the particle.

Write the relationship of de Broglie wavelength lambda associated with a particle of mass m in terms of its kinetic energy K.

Write the relationship of de Broglie wavelength lambda associated with a particle of mass m in terms of its kinetic energy K.