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Uranium has two common isotopes, with atomic masses of 238 and 235. one way to separate these isotopes is to combine the uranium with fluorine to make uranium hexafluoride gas, UF6, then exploit the difference in the average thermal speeds of molecules containing the different isotopes. Calculate the rms speed of each molecule at room temperature, and compare them.

Short Answer

Expert verified

Speed of the lighter isotope of UF6is more than the speed of heavier isotope of UF6

Step by step solution

01

Calculation of atomic mass of each isotope .

Atomic mass of UF6 is calculated as,

mUF6=mU+6mFGiventhatforU238,mU=238amuandmF=19amuThusmUF6=238+6(19)=352amuSimilarlyforU235,mU=235amuandmF=19amumUF6=235+6(19)=349amu

02

Getting the mass in kg for each isotope 

The mass of each UF6 atom is calculated as,

m=mUF6NAwhereNA=6.023×1023/moleThusforU238,m=352×10-3kg/mol6.023×1023m=5.844×10-25kgAndforU235,m1=349×10-3kg/mol6.023×1023m1=5.794×10-25kg

03

Analysis of faster isotope

The rms speed of a molecule is given by,

vrms=3KTm

Where K = Boltzman constant & T is absolute temperature = 300k

Now for U238,vrms=3×1.38×10-23××3005.844×10-25vrms=145.78m/sAndforU235,v1rms=3×1.38×10-23×3005.794×10-25v1rms=146.4m/s

Thus UF6of U235 isotope is faster than the UF6of U238isotope.

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