What is the wavelenth of the `0.186 MeV` gamma- ray photon emitted by

1.	What is the wavelenth of the `0.186 MeV` gamma- ray photon emitted by radium `._(88)^(226) Ra`?
Answer» The photon energy is the difference between two nuclear energy levels. Equation `E_(i )- E_(f) =hf` gives the relation between the energy level separation `Delta E` and the frequency f of the photon as `Delta E =hf` . Since `f lambda =c` , the wavelength of the photon is `lambda -hc//Delta E`. First, we must convert the photon energy into joule: `Delta E =(0.186 xx 10^(6) eV)((1.60 xx 10^(-19))/1 eV)` ` = 2.98 xx 10^(-14) J` The wavelength of the photon is `lambda=(hc)/(Delta) E =((6.63 xx 10^(-34) J.s)(3.00 xx 10^(8) m s^(-1)))/(2.98 xx 10^(-14)J)` `=6.67+10^(-12)m`.

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What is the wavelenth of the `0.186 MeV` gamma- ray photon emitted by radium `._(88)^(226) Ra`?

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