Q.Calculate the average atomic mass of hydrogen using the following data:
Isotope — % Natural abundance: 99.985, Molar mass: 1
Isotope — % Natural abundance: 0.015, Molar mass: 2
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Start your 14-day free trial to unlock the full solution →The average atomic mass of hydrogen is a weighted mean of its isotopes' masses, using their natural abundances as weights. The result is 1.00015 u.
Why a weighted average?
An element's atomic mass on the periodic table isn't the mass of a single atom — it's the average mass of all naturally occurring atoms of that element. Hydrogen exists as two stable isotopes: protium (, mass ≈ 1 u) and deuterium (, mass ≈ 2 u). Since protium is vastly more common (99.985% of all hydrogen atoms), the average should be very close to 1, but slightly higher because of the tiny fraction of heavier deuterium atoms.
The formula is straightforward:
The division by 100 converts percentage to a decimal fraction.
Step-by-step calculation
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Identify the data
- : mass = 1 u, abundance = 99.985%
- : mass = 2 u, abundance = 0.015%
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Multiply each isotope's mass by its percentage abundance
- For :
- For :
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Add these products
- Divide by 100 (because abundances are in percent) …
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