How many liters of a 3.0M H3(PO4) solution are required to react with 4.5 g of zinc?

1 Answer
Hriman
Mar 26, 2018

#0.015"L H"_3("PO"_4)#

Explanation:

  1. Write a balanced equation
    #3Zn(s)+2H_3(PO_4)(aq)->Zn_3(PO_4)_2(s)+ 3H_2(g)#

  2. Stoichiometry
    #4.5 cancel("g Zn")* (1cancel("mol Zn"))/ (65.38 cancel("g Zn")) * (2 cancel("mol H"_3("PO"_4) ))/ (3 cancel("mol Zn"))* (1 "L H"_3("PO"_4))/ (3 cancel("mol H"_3("PO"_4)))=#

#0.015"L H"_3("PO"_4)#

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