An element has the following natural abundances and isotopic masses: 90.92% abundance with 19.99 amu, 0.26% abundance with 20.99 amu, and 8.82% abundance with 21.99 amu. Calculate the average atomic mass of this element. Report your answer to 2 decimal places and enter your answer as a number, a space, and the units.

Chemistry for Engineering Students
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ISBN:9781337398909
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Publisher:Lawrence S. Brown, Tom Holme
Chapter2: Atoms And Molecules
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An element has the following natural abundances and isotopic masses: 90.92% abundance with 19.99 amu, 0.26% abundance with 20.99 amu, and 8.82% abundance with 21.99 amu. Calculate the average atomic mass of this element. Report your answer to 2 decimal places and enter your answer as a number, a space, and the units.

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