MyQuestionIcon

1

You visited us 1 times! Enjoying our articles? Unlock Full Access!

Law of Radioactivity

The half-life...

Question

The half-life of $_{38}^{90} S r$ is 28 years. what is its disintegration constant

Open in App

Solution

The disintegration constant is given as $λ = \frac{0.693}{t_{1 / 2}} = \frac{0.693}{28} = 0.02475 / y e a r$

Suggest Corrections

thumbs-up

0

Similar questions

Q. The half-life of

_{38}^{90} S r

is 28 years. What is the disintegration rate of 15 mg of this isotope?

Q. The half-life of a radioactive nuclide is

100

years. Then, what is its disintegration constant (in

y e a r^{- 1}

Q. The half life period of radium is

1600

years. Calculate the disintegration constant of radium. Mention its unit.

Q. Radioactive equilibrium is established in a uranium mineral between radium and uranium atom in the ratio 1 : 28. If half-life period of radium is 1620 years, calculate the disintegration constant of uranium.

Q. The half life of a radioactive isotope is

3

hours. What is the value of its disintegration constant?

View More

Join BYJU'S Learning Program

similar_icon

Related Videos

lock

Law of Radioactivity

PHYSICS

Watch in App

explore_more_icon

Explore more

Law of Radioactivity

Standard XII Physics

Join BYJU'S Learning Program

CrossIcon