The atomic masses of the two stable isotopes of boron, | StudySoup

Textbook Solutions for Chemistry

Chapter 3 Problem 1PE

Question

The atomic masses of the two stable isotopes of boron, \({ }_{5}^{10} B\) (19.78 percent) and \(_5^{11}\mathrm{B}\) (80.22 percent), are 10.0129 amu and 11.0093 amu, respectively. Calculate the average atomic mass of boron.

Solution

Step 1 of 3

Here, we are asked to calculate the average atomic mass of boron.

The average atomic mass of an element is the sum of the masses of its isotopes, each multiplied by its natural abundance.

Given: Atomic mass of boron, = 10.0129 amu.

Atomic mass of boron,  = 11.0093 amu.

 

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full solution

Title Chemistry 11 
Author Raymond Chang
ISBN 9780073402680

The atomic masses of the two stable isotopes of boron,

Chapter 3 textbook questions

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