Part A Balance the chemical reaction equation P4(s)+10Cl2(g)4PCl5(g) Part B How
ID: 587192 • Letter: P
Question
Part A
Balance the chemical reaction equation
P4(s)+10Cl2(g)4PCl5(g)
Part B
How many moles of PCl5 can be produced from 24.0 g of P4 (and excess Cl2)?
0.775 mole thats the answer
Part C
How many moles of PCl5 can be produced from 50.0 g of Cl2 (and excess P4)?
Express your answer to three significant figures and include the appropriate units.
0.282 mole thats the answer
Part D What mass of PCl5 will be produced from the given masses of both reactants? I NEED HELP ON THIS ONE ... PLEASE HELP ME ON D
0.775 mole thats the answer
Part C
How many moles of PCl5 can be produced from 50.0 g of Cl2 (and excess P4)?
Express your answer to three significant figures and include the appropriate units.
0.282 mole thats the answer
Part D What mass of PCl5 will be produced from the given masses of both reactants? I NEED HELP ON THIS ONE ... PLEASE HELP ME ON D
Explanation / Answer
part-A
P4(s)+10Cl2(g)4PCl5(g)
part-B
P4(s)+10Cl2(g)4PCl5(g)
no of moles of P4 = W/G.M.Wt
= 24/124 = 0.194 moles
from balanced equation
1 mole of P4 react with Cl2 to gives 4 moles of PCl5
0.194 moles of P4 react with Cl2 to gives = 4*0.194/1 = 0.776 moles of PCl5
part-C
no of moles of Cl2 = w/G.M.Wt
= 50/71 = 0.704 moles
P4(s)+10Cl2(g)4PCl5(g)
10 moles of Cl2 react with P4 to gives 4 moles of PCl5
0.704 moles of Cl2 react with P4 to gives = 4*0.704/10 = 0.2816 moles of PCl5
part-D
from balanced equation
1 mole of P4 react with Cl2 to gives 4 moles of PCl5
0.194 moles of P4 react with Cl2 to gives = 4*0.194/1 = 0.776 moles of PCl5
mass of PCl5 =no of moles * gram molar mass
= 0.776*208.5 = 161.786g
10 moles of Cl2 react with P4 to gives 4 moles of PCl5
0.704 moles of Cl2 react with P4 to gives = 4*0.704/10 = 0.282 moles of PCl5
mass of PCl5 =no of moles * gram molar mass
= 0.282*208.5 = 58.7136g
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