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What is the highest energy to which doubly ionized helium atoms (alpha particles) can be accelerated in a DC accelerator with 3 MV maximum voltage
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What is the highest energy to which doubly ionized helium atoms (alpha particles) can be accelerated in a DC accelerator with 3 MV maximum voltage

User Spielberg
by
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1 Answer

4 votes

Answer:

Highest energy will be equal to
9.6* 10^(-13)J

Step-by-step explanation:

Charged on doubly ionized helium atom
q=2e=2* 1.6* 10^(-19)C=3.2* 10^(-19)C

It is accelerated with maximum voltage of 3 MV

So voltage
V=3* 10^6volt

Now energy is given by
E=qV=3.2* 10^(-19)* 3* 10^6=9.6* 10^(-13)J

So highest energy will be equal to
9.6* 10^(-13)J

User Herman Kan
by
6.1k points
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