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The average atomic mass of a sample of element X is 16.2 u. What are the percentages of isotopes 816X and 818X in the sample?

Atomic Structure

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Answer

Let the percentage of 816X be a and that of 818X be 100 - a.

16.2u = 16a100\dfrac{\text{16a}}{100} + 18(100-a)10018\dfrac{\text{(100-a)}}{100}

⇒ 1620 = 16a + 1800 – 18a

⇒ 1620 = 1800 – 2a

⇒ 2a = 1800 - 1620

⇒ a = 180016202\dfrac{1800 - 1620}{2}

⇒ a = 1802\dfrac{180}{2}

⇒ a = 90

∴ Percentage of 816X = 90%

and

Percentage of 818X = 100 - a = 100 - 90 = 10%

Hence, the percentage of the isotope 816X in the sample is 90% and that of 818X is 10%

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