The nucleus of an atom of .(92)Y^(235) i...

The nucleus of an atom of `._(92)Y^(235)` initially at rest decays by emitting an `alpha` particle. The binding energy per nucleon of parent and daughter nuclei are `7.8MeV` and `7.835MeV` respectively and that of `alpha` particles is `7.07MeV//"nucleon"`. Assuming the daughter nucleus to be formed in the unexcited state and neglecting its share of energy in the reaction, calculate speed of emitted alpha particle. Take mass of `alpha` particle to be `6.68xx10^(-27)kg`.

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Q `= [(7.835xx231 )+(7.07xx4)-(7.8xx235)]` MeV
=5.18 MeV
`=5.18 xx1.6 xx10^(-13)` J
This entire kinetic energy is taken by `alpha`-particle as given
`1/2 mv^2=5.18 xx1.6 xx10^(-13)`
` 1/2 xx6.68 xx10^(-27)v^2=5.18xx1.6 xx10^(-13)`
`v =1.57xx10^7` m/s

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