The equation
`4H^(+) rarr _(2)^(4) He^(2+) + 2e bar + 26 MeV represents`

The equation 4[H^(+) rarr _(2)^(4) He^(2+) + 2e bar + 26 MeV represents

The equation: 4._(1)^(1) H^(+) rarr ._(2)^(4) He^(2+) + 2e + 26MeV represnets.

If the binding energy per nucleon in _(3)^(7) Li and _(2)^(4)He nuclei are 5.60 MeV and 7.06MeV respectively then in the reaction P +_(3)^(7) Li rarr 2 _(2)^(4) He energy of proton mnust be

Binding energy per nucleus of ._(1)^(2)H and ._(2)^(4)He are 1.1 MeV and 7 MeV respectively. Calculate the amount of energy released in the following process: ._(1)^(2)H + ._(1)^(2)H to ._(2)^(4)He

The binding energy of deuteron ._1^2 H is 1.112 MeV per nucleon and an alpha- particle ._2^4 He has a binding energy of 7.047 MeV per nucleon. Then in the fusion reaction ._1^2H + ._1^2h rarr ._2^4 He + Q , the energy Q released is.

The binding energy per nucleon for ""_(1)H^(2) and ""_(2)He^(4) are 1.1 MeV and 7.1 MeV respectively. The energy released when two ""_(1)H^(2) to form ""_(2)He^(4) is ………….. MeV.