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Question
sodium borohydride (\\(\text{nabh}_4\\)) is used industrially in many organic syntheses. one way to prepare it is by reacting sodium hydride with gaseous diborane (\\(\text{b}_2\text{h}_6\\)). assuming an 76.1% yield, how many grams of \\(\text{nabh}_4\\) can be prepared by reacting 7.78 g of sodium hydride and 9.47 g of diborane? be sure your answer has the correct number of significant figures.
Write and balance the chemical equation
Using the Chemical Equation Writing and Chemical Equation Balancing knowledge points
Calculate the moles of each reactant
Using the Stoichiometry knowledge point
Determine the limiting reactant
Using the Stoichiometry knowledge point
Calculate the theoretical yield of sodium borohydride
Using the Stoichiometry knowledge point
Calculate the actual yield using percent yield
We apply the percent yield formula to find the actual mass of product obtained.
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Sodium borohydride (\(\text{NaBH}_4\)) is used industrially in many organic syntheses. One way to prepare it is by reacting sodium hydride with gaseous diborane (\(\text{B}_2\text{H}_6\)). Assuming an \(76.1\%\) yield, how many grams of \(\text{NaBH}_4\) can be prepared by reacting \(7.78\text{ g}\) of sodium hydride and \(9.47\text{ g}\) of diborane? Be sure your answer has the correct number of significant figures.
<blank>\(9.33\)</blank> \(\text{g}\)