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Highly energetic electrons are bombarded on a target element containing 30 neutrons. The ratio of the radius of the target nucleus to the radius of the helium nucleus is 14^(1/3). Find the atomic number of the target nucleus.

1. 25
2. 26
3. 27
4. 28

Correct answer: 26

Solution

From the radius ratio: (A/4)^(1/3) = 14^(1/3) gives A = 56. With 30 neutrons, Z = 56 - 30 = 26, which is iron (Fe).

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