The half-life of 1311 is 8.04 days. (a) Convert the half-life to seconds. S (b) Calculate the decay constant for this isotope. S-1 (c) Convert 0.570 μCi to the SI unit the becquerel. Bq
Radioactive decay
The emission of energy to produce ionizing radiation is known as radioactive decay. Alpha, beta particles, and gamma rays are examples of ionizing radiation that could be released. Radioactive decay happens in radionuclides, which are imbalanced atoms. This periodic table's elements come in a variety of shapes and sizes. Several of these kinds are stable like nitrogen-14, hydrogen-2, and potassium-40, whereas others are not like uranium-238. In nature, one of the most stable phases of an element is usually the most prevalent. Every element, meanwhile, has an unstable state. Unstable variants are radioactive and release ionizing radiation. Certain elements, including uranium, have no stable forms and are constantly radioactive. Radionuclides are elements that release ionizing radiation.
Artificial Radioactivity
The radioactivity can be simply referred to as particle emission from nuclei due to the nuclear instability. There are different types of radiation such as alpha, beta and gamma radiation. Along with these there are different types of decay as well.
![**The half-life of ¹³¹I is 8.04 days.**
**(a) Convert the half-life to seconds.**
\[ \text{______ s} \]
**(b) Calculate the decay constant for this isotope.**
\[ \text{______ s\(^{-1}\)} \]
**(c) Convert 0.570 μCi to the SI unit the becquerel.**
\[ \text{______ Bq} \]
**(d) Find the number of ¹³¹I nuclei necessary to produce a sample with an activity of 0.570 μCi.**
\[ \text{______ ¹³¹I nuclei} \]
**(e) Suppose the activity of a certain ¹³¹I sample is 6.90 mCi at a given time. Find the number of half-lives the sample goes through in 40.2 days and the activity at the end of that period. (Enter your answer for the number of half-lives to at least one decimal place.)**
\[ \text{______ half-lives} \]
\[ \text{______ mCi} \]](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F9fadd83f-dc8f-4964-83f6-b368fc687621%2Fdf74cb7d-d19c-4c74-9217-e558a803c3e7%2Fyc946vw_processed.png&w=3840&q=75)

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