QUESTION IMAGE
Question
an unknown compound has the following chemical formula:
p_x cl_3
where x stands for a whole number.
measurements also show that a certain sample of the unknown compound contains 6.1 mol of phosphorus and 17.77 mol of chlorine.
write the complete chemical formula for the unknown compound.
Step1: Find the ratio of moles of P to Cl
The ratio of moles of \(P\) to \(Cl\) is \(\frac{n(P)}{n(Cl)}=\frac{6.1}{17.77}\).
Step2: Simplify the ratio
\(\frac{6.1}{17.77}=\frac{6.1\div6.1}{17.77\div6.1}=\frac{1}{2.913}\approx\frac{1}{3}\)
Since the formula is \(P_xCl_3\), and the ratio of \(P:Cl = 1:3\) (from the mole - ratio calculation), \(x = 1\)
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\(PCl_3\)