For the fission reaction 2""_(1)^(2) "H" -> ""_(1)^(3) "H" + ""_(1)^(1) "H"221H→31H+11H, where the isotopic masses are "2.01410 amu"2.01410 amu, "3.01605 amu"3.01605 amu, and "1.00782 amu"1.00782 amu respectively, what is the change in energy for this reaction in "J/mol"J/mol?
Hint: first calculate the mass defect, and then use E = mc^2E=mc2 .
Hint: first calculate the mass defect, and then use
1 Answer
DeltaE = -3.892 xx 10^11 "J/mol"
You should follow the hint. In this case, we should first find the initial and final masses.
m_(""_1^2 H) = "2.01410 amu" , for each deuterium atom on the reactants' side.
m_(""_1^3 H) = "3.01605 amu" , for the one tritium atom on the products' side.
m_(""_1^1 H) = "1.00782 amu" , for the hydrogen atom on the products' side.
The initial mass is:
m_i = sum_k m_(k,i)
= 2 xx m_(""_1^2 H) = "4.02820 amu"
And the final mass is:
m_f = sum_l m_(k,f)
= m_(""_1^3 H) + m_(""_1^1 H) = "4.02387 amu"
So, the change in mass is:
Deltam = m_f - m_i = 4.02387 - 4.02820
= -"0.00433 amu" , or"g/mol" .
And that is your mass defect. The change in energy associated with this mass defect is then going to use the change in mass in
color(blue)(DeltaE) = Deltamc^2
= (-0.00433 xx 10^(-3) "kg/mol")(2.998 xx 10^(8) "m/s")^2
= color(blue)(-3.892 xx 10^11 "J/mol")
