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4.20: Calculating Average Atomic Mass

  • Page ID
    52945
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     Pile of rocks and boulders
    Figure \(\PageIndex{1}\) (Credit: George M. Groutas; Source: Flickr Boulders beach, Cape Peninsula(opens in new window) [www.flickr.com]; License: CC by 2.0(opens in new window))

    Have you ever tried to move a boulder?

    You have a pile of rocks to move and need to decide what equipment you want to rent to move them. If the rocks are fairly small, you can get a shovel to pick them up. Larger rocks could be moved by hand, but big boulders will need some sort of mechanical scoop. The amount of each kind of rock will also determine how much time you will need to get the job done. Knowing the relative amounts of large, medium, and small rocks can be very useful in deciding how to approach the job.

    Percent Natural Abundance

    Most elements occur naturally as a mixture of two or more isotopes. The table below shows the natural isotopes of several elements, along with the percent natural abundance of each.

    Element Isotope (Symbol) Percent Natural Abundance Atomic Mass \(\left( \text{amu} \right)\) Average Atomic Mass \(\left( \text{amu} \right)\)
    Table \(\PageIndex{1}\): Atomic Masses and Percents of Abundance of Some Natural Isotopes
    Hydrogen \(\ce{_1^1H}\) 99.985 1.0078 1.0080
    \(\ce{_1^2H}\) 0.015 2.0141
    \(\ce{_1^3H}\) negligible 3.0160
    Carbon \(\ce{_6^{12}C}\) 98.89 12.000 12.011
    \(\ce{_6^{13}C}\) 1.11 13.003
    \(\ce{_6^{14}C}\) trace 14.003
    Oxygen \(\ce{_8^{16}O}\) 99.759 15.995 15.999
    \(\ce{_8^{17}O}\) 0.037 16.995
    \(\ce{_8^{18}O}\) 0.204 17.999
    Chlorine \(\ce{_{17}^{35}Cl}\) 75.77 34.969 35.453
    \(\ce{_{17}^{37}Cl}\) 24.23 36.966
    Copper \(\ce{_{29}^{63}Cu}\) 69.17 62.930 63.546
    \(\ce{_{29}^{65}Cu}\) 30.83 64.928

    For some elements, one particular isotope predominates greatly over the other isotopes. Naturally occurring hydrogen is nearly all hydrogen-1 and naturally occurring oxygen is nearly all oxygen-16. For many other elements, however, more than one isotope may exist in more substantial quantities. Chlorine (atomic number 17) is a yellowish-green toxic gas. About three quarters of all chlorine atoms have 18 neutrons, giving those atoms a mass number of 35. About one quarter of all chlorine atoms have 20 neutrons, giving those atoms a mass number of 37. Were you to simply calculate the arithmetic average of the precise atomic masses, you would get 36.

    \[\frac{\left( 34.969 + 36.966 \right)}{2} = 35.968 \: \text{amu}\nonumber \]

    Clearly the actual average atomic mass from the last column of the table is significantly lower. Why? We need to take into account the percent natural abundance of each isotope, in order to calculate the weighted average. The atomic mass of an element is the weighted average of the atomic masses of the naturally occurring isotopes of that element. The sample problem below demonstrates how to calculate the atomic mass of chlorine.

    Example \(\PageIndex{1}\)

    Use the atomic masses of each of the two isotopes of chlorine along with their respective percent abundances to calculate the average atomic mass of chlorine.

    Solution
    Step 1: List the known and unknown quantities and plan the problem.
    Known
    • Chlorine-35: atomic mass \(= 34.969 \: \text{amu}\) and percent abundance \(= 75.77\%\)
    • Chlorine-37: atomic mass \(= 36.966 \: \text{amu}\) and percent abundance \(= 24.23\%\)
    Unknown
    • Average atomic mass of chlorine

    Change each percent abundance into decimal form by dividing by 100. Multiply this value by the atomic mass of that isotope. Add together for each isotope to get the average atomic mass.

    Step 2: Calculate.

    \[\begin{array}{ll} \text{chlorine-35} & 0.7577 \times 34.969 = 26.50 \: \text{amu} \\ \text{chlorine-37} & 0.2423 \times 36.966 = 8.957 \: \text{amu} \\ \text{average atomic mass} & 26.50 + 8.957 = 35.46 \: \text{amu} \end{array}\nonumber \]

    Note: Applying significant figure rules results in the \(35.45 \: \text{amu}\) result without excessive rounding error. In one step:

    \[\left( 0.7577 \times 34.969 \right) + \left(0.2423 \times 36.966 \right) = 35.46 \: \text{amu}\nonumber \]

    Step 3: Think about your result.

    The calculated average atomic mass is closer to 35 than to 37 because a greater percentage of naturally occurring chlorine atoms have the mass number of 35. It agrees with the value from the table above.

    Summary

    • The atomic mass of an element is the weighted average of the atomic masses of the naturally occurring isotopes of that element.
    • Calculations of atomic mass use the percent abundance of each isotope.

    Review

    1. Define atomic mass.
    2. What information do you need to calculate atomic mass for an element?
    3. Calculate the atomic mass for carbon using the data provided in the table below.

    Isotope

    Atomic Mass

    Percent Abundance

    carbon-12

    12.000000

    98.90

    carbon-13

    13.003355

    1.100


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