The de-Brogile wavelength of a neutron at `927^(@)`C is `lamda`. What will be its wavelength at `27^(@)`C?

Question

The de-Brogile wavelength of a neutron at `927^(@)`C is `lamda`. What will be its wavelength at `27^(@)`C?

The de-Brogile wavelength of a neutron at `927^(@)`C is `lamda`. What will be its wavelength at `27^(@)`C?
A. `lamda//2`
B. `lamda`
C. `2lamda`
D. `4lamda`

Monjur Alahi

4 views

2025-01-04 04:42

1 Answers

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Salim Ahmed Kawsar · Accepted Answer · 2023-02-05T15:29:48+06:00

Salim Ahmed Kawsar

Correct Answer - 3
`lamda=h/(mv)" "vpropsqrtT`
`lamda=h/(mxxsqrt(1200))`
`lamda_(1)=h/(mxxsqrt(300))`
`eq. 2/1`
`lamda_(1)/lamda_(2)=sqrt(1200/300)`
`lamda_(1)=2lamda`

4 views Answered 2023-02-05 15:29