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An electron, starting from rest, accelerates through a potential difference of 25.0 V. What is the final de Broglie wavelength of the electron, assuming that its final speed is not relativistic

User SirPilan
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1 Answer

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Answer: λ = 0.245 nm

Step-by-step explanation:

KE = qV

V = 25.0 V

where q = e = 1.6*10^-19

KE = (1.6*10^-19)(25.0 V)

KE= 4.0 * 10^-18 J

λ =
(h)/(√(2mKE) )

mass of electron = 9.11 * 10^-34

λ =
\frac{6.626*10^(-34) }{\sqrt{(2)(9.11*10^(-31))(4.0*10^(-18)) } }

λ = 2.45 e -10 m

λ = 0.245 nm

User Tarif Chakder
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