Question #7071f

1 Answer
Stefan V.
Nov 12, 2016

"1.27 g Na"

Explanation:

The trick here is to realize the every sample of sodium bromide, regardless of its mass, will contain 22.34% sodium by mass.

This is true because sodium and bromide always combine in definite proportions, i.e. stable ratios by mass, to form sodium bromide.

Now, a 22.34% percent concentration by mass means that every "100 g" of sodium bromide will contain "22.34 g" of sodium and

"100 g " - " 22.34 g" = "77.66 g Br"

Therefore, you can say that the mass ratio that exists between sodium and bromine in any sample of sodium bromide will be

"22.34 g Na"/"77.66 g Br" = 22.34 / 77.66

You can thus use this definite proportion to say that a "5.69 g" sample of sodium bromide will contain

5.69 color(red)(cancel(color(black)("g NaBr"))) * "22.34 g Na"/(100color(red)(cancel(color(black)("g NaBr")))) = "1.271 g Na" = color(green)(bar(ul(|color(white)(a/a)color(black)("1.27 g Na")color(white)(a/a)|)))

The answer is rounded to three sig figs.

You can use the known definite proportion to find the mass of bromide present in the sample

1.271 color(red)(cancel(color(black)("g NaBr"))) * "77.66 g Br"/(22.34 color(red)(cancel(color(black)("g NaBr")))) = "4.42 g Br"

This checks out because

overbrace("5.69 g")^(color(blue)("mass of NaBr sample")) - overbrace("1.27 g")^(color(purple)("mass of Na")) = overbrace("4.42 g")^(color(darkgreen)("mass of Br"))

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