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30 June, 12:38

A mass spectrograph is used to measure the masses of ions, or to separate ions of different masses. In one design for such an instrument, ions with mass m and charge q are accelerated through a potential difference V. They then enter a uniform magnetic field that is perpendicular to their velocity and are deflected in a semicircular path of radius R. A detector measures where the ions complete the semicircle and from this it is easy to calculate R.

Derive the equation for calculating the mass of the ion from measurements of B, V, R, and q.

What potential difference V is needed so that singly ionized 12C atoms will have R=50.0 cm in a0.150-T magnetic field?

Do you think that this beam separation is sufficient for the two ions to be distinguished?

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  1. 30 June, 16:20
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    There's a part of the question missing and it says;

    "Suppose the beam consists of a mixture of 12C and 14C ions. If V and B have the same values as in

    part (b), calculate the separation of these two isotopes at the detector. Do you think that this beam

    separation is sufficient for the two ions to be distinguished?"

    Answer:

    A) m = qB²R²/2V

    B) V = 22.5904 KV

    C) Separation = 4cm

    This separation is sufficient for easy separation of the two ions.

    Explanation:

    A) The speed of the ions when they enter the region of a uniform magnetic field is found by energy

    conservation;

    qV = (1/2) mv²

    v = √ (2qV/m)

    When the ion enters this region, it will feel a magnetic force

    Fb = qvB

    Now, this force is always perpendicular to v and therefore, the acceleration is always perpendicular to v. This

    is a clear characteristic of circular motion, and thus, the ion will start going in a circle once it enters the region of uniform B. Furthermore, B is always perpendicular to v so the magnitude is given as;

    Fb = qvB = ma = m v ² / R

    Hence, qvB = m v ² / R

    qBR/m = v

    From earlier, we saw that;

    v = √ (2qV/m)

    Thus, qBR/m = √ (2qV/m)

    Now, let's make m the subject of the formula;

    q²B²R²/m² = 2qV/m

    qB²R² = 2Vm

    m = qB²R²/2V

    B) If we rearrange the equation of m we just got to make V the subject, we get;

    V = qB²R²/2m

    q is charge on proton =

    1.6 x 10^ (-19) C

    B = 0.15 T

    R = 50cm = 0.5m

    Now, from the question, the mass of Carbon-12 is 12u and if it's singly ionized it obtains a charge e and so, m = 12 x 1.66 x 10^ (-27) kg.

    Thus, the necessary potential is:

    V = (1.6 x 10^ (-19) x 0.15² x 0.5²) / (2 x 12 x 1.66 x 10^ (-27)) = 22,590.4 V or 22.5904 KV

    C) Carbon-14 has a mass of 14 u. Again rearranging the formula V = qB²R²/2m to make R the subject;

    R = √ (2mV) / qB²

    Thus, the differences in radii of the

    two semicircles will be;

    Radius of C-14 - Radius of C-12

    Thus;

    ΔR = √ (2 (m-C14) V) / qB²) - √ (2 (m-C12) V) / qB²)

    ΔR = [√ (2 x 14 x 1.66 x 10^ (-27) x 22,590.4) / 1.6 x 10^ (-19) x 0.15²) ] - [√ (2 x 12 x 1.66 x 10^ (-27) x 22,590.4) / 1.6 x 10^ (-19) x 0.15²) ]

    = 0.54 - 0.5 = 0.04m or 4cm

    This beam separation is sufficient for easy separation of the two ions.
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