A sample of 0.3220 g of an ionic compound containing the | StudySoup

Textbook Solutions for Chemistry

Chapter 4 Problem 10PE

Question

A sample of \(0.3220 \mathrm{~g}\) of an ionic compound containing the bromide ion \(\left(\mathrm{Br}^{-}\right)\) is dissolved in water and treated with an excess of \(\mathrm{AgNO}_{3}\). If the mass of the \(\mathrm{AgBr}\) precipitate that forms is \(0.6964 \mathrm{~g}\), what is the percent by mass of Br in the original compound?

Solution

Step 1 of 3

Here, we are going to calculate the percent of Br in the original compound by mass.

The reaction is:

\(\mathrm{AgNO}_{3}(\mathrm{~s})+\mathrm{Br}^{-}(\mathrm{aq}) \rightarrow \mathrm{AgBr}(\mathrm{s})+\mathrm{NO}_{3}^{-}(\mathrm{aq})\)

We know,

Mass percent of Br \(^{-}(\mathrm{aq})=\frac{\text { Massof Br }^{-}}{\text {Total mass } \times 100 \% \ldots \ldots(1)}\)

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full solution

Title Chemistry 11 
Author Raymond Chang
ISBN 9780073402680

A sample of 0.3220 g of an ionic compound containing the

Chapter 4 textbook questions

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