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3 January, 09:36

A singly charged ion of 7Li (an isotope of lithium) has a mass of 1.16*10-26 kg. It is accelerated through a potential difference of 300 V and then enters a magnetic field with magnitude 0.742 T perpendicular to the path of the ion. What is the radius of the ion's path in the magnetic field?

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  1. 3 January, 13:09
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    8.87mm

    Step-by-step explanation:

    If the singled charged ion accelerates through a magnetic field, the force acting on the ion is expressed as;

    F = qvBsin (theta)

    Since the magnetic field is perpendicular to the path of the iron, angle that the ion made with the field will be 90°

    F = qvBsin90°

    F = qvB ... (1)

    q is the charge on the ion

    v is the velocity possessed by the charge

    B is the magnetic Field

    Also according to Newton's second law, the force experienced by the ion can also be expressed as;

    F = ma = mv²/R ... (2)

    Where a is the centripetal acceleration = v²/R

    m is the mass of the ion

    R is the radius

    Equating both value of the force to get the radius;

    qvB = mv²/R

    qB = mv/R

    R = mv/qB ... (3)

    Given m = 1.16*10^-26kg

    q = 1.6*10^-19C

    B = 0.742T

    v = ?

    Before we can get the radius R, we need to get the velocity of the charge in the wire using the relationship.

    1/2mv² = eV (since the ion possess kinetic energy and potential difference V)

    From the equation, v² = 2eV/m

    v = √2eV/m

    v = √2*1.6*10^-19*300/1.16*10^-26

    v = √8.28*10^9

    v = 90971.77m/s

    Substituting v = 90971.77m/s into equation 3 to get the radius R of the ion's path in the field will give;

    R = mv/qB

    R = 1.16*10^-26 * 90971.77/1.6*10^-19*0.742

    R = 1.056*10^-21/1.19*10^-19

    R = 0.00887m

    R = 8.87mm
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