How many moles of $PCl_5$ can be produced from 55.0 g of $Cl_2$ and excess $P_4$ ?

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How many moles of $PCl_5$ can be produced from 55.0 g of $Cl_2$ and excess $P_4$ ?

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Answer 1 · 2017-06-12T02:30:44

$0.310$ $"mol PCl"_5$

Explanation:

We're asked to calculate the number of moles of $"PCl"_5$ formed from excess $"P"_4$ and $55.0$ $"g CL"_2$ .

Let's start by writing the chemical equation for this reaction:

$"P"_4 (s) + 10"Cl"_2 (g) rarr 4"PCl"_5(s)$

Using the molar mass of $"Cl"_2$ , let's convert from grams to moles, and then use the coefficients in the equation to convert to moles of $"PCl"_5$ :

$55.0$ $cancel("g Cl"_2)((1cancel("mol Cl"_2))/(70.90cancel("g Cl"_2)))((4"mol PCl"_5)/(10cancel("mol Cl"_2))) = color(red)(0.310$ $color(red)("mol PCl"_5$

Thus, with excess phosphorus, $0.310$ moles of $"PCl"_5$ will form (assuming the reaction goes to completion).

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How many moles of $PCl_5$ can be produced from 55.0 g of $Cl_2$ and excess $P_4$ ?

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How many moles of $PCl_5$ can be produced from 55.0 g of $Cl_2$ and excess $P_4$ ?