The half-life of `._(38)^(90)Sr` is 28 years. What is the disintegration rate of 15 mg of this isotope ?

The half-life of `._(38)^(90)Sr` is 28 years. What is the disintegrati

1.	The half-life of `._(38)^(90)Sr` is 28 years. What is the disintegration rate of 15 mg of this isotope ?
Answer» Here T = 28 years `= 28xx3.154xx10^(7)s` As number of atoms in 90 g of `._(38)Sr^(90)` `= 6.023xx10^(23)` `therefore` Number of atoms in 15 mg of `._(38)Sr^(90)` `= (6.023xx10^(23))/(90)xx(15)/(1000)` i.e., `N=1.0038xx10^(20)` Rate of disintegration `(dN)/(dt)=lambda N` `= (0.693)/(T)N` `= (0.693xx1.0038xx10^(20))/(28xx3.154xx10^(7))` `= 7.87xx10^(10)Bq`

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The half-life of `._(38)^(90)Sr` is 28 years. What is the disintegration rate of 15 mg of this isotope ?

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