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Lubov Fominskaja [6]
3 years ago
15

Chemistry, giving brainliest !

Chemistry
2 answers:
Tom [10]3 years ago
6 0
The actual yield is i believe 20.03g
i may be wrong and if i am, i am extremely sorry and also sleep deprived
Alex Ar [27]3 years ago
5 0

Answer:

<u>20.03g</u>

Explanation:

This is the formula for percentage yield:

Percentage yield = Actual Yield / Theoretical yield

Rearrange it to get the Actual yield, which would be:

Actual yield = Percentage yield (in decimal form) x Theoretical yield

We know that 75% of CO2 is produced as the percentage yield in a reaction and the theoretical yield for the mass we're supposed to find is 26.7 grams.

Percentage yield in decimal form: 0.75

Theoretical yield: 26.7g

Plug it in the equation

<u>Actual yield = 0.75 x 26.7g</u>

<u>Actual yield = 20.03g</u>

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<u>Answer:</u> The percent composition by mass of hydrogen in given compound is 6.33 %

<u>Explanation:</u>

We are given:

A chemical compound having chemical formula of NH_4HCO_3

It is made up by the combination of 1 nitrogen atom, 5 hydrogen atoms, 1 carbon atom and 3 oxygen atoms

To calculate the percentage composition by mass of hydrogen in the compound, we use the equation:

\%\text{ composition of Hydrogen}=\frac{\text{Mass of hydrogen}}{\text{Mass of compound}}\times 100

Mass of compound = [(1\times 14)+(5\times 1)+(1\times 12)+(3\times 16)]=79g/mol

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Putting values in above equation, we get:

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