Under conditions of #1atm# pressure, and a temperature of #110# #""^@C#, what volume of gas would decomposition of a #127.0g# mass of ammonium carbonate evolve?

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Answer 1 · 2017-11-21T08:44:31

Well you got the stoichiometric equation.....I make it approx. #160*L#...

#(NH_4)_2CO_3(s)+Delta rarr 2NH_3(g)uarr+CO_2(g)uarr + H_2O(g)uarr#

And thus one mole of ammonium carbonate gives FOUR MOLES of GAS....

#"Moles of ammonium carbonate"=(127.0*g)/(96.09*g*mol^-1)=1.32*mol#

And thus we evolve #4xx1.32*mol# of gas....whose volume we may interrogate by the old Ideal Gas equation.

#V=(nRT)/P=(4xx1.32*cancel(mol)xx0.0821*(L*cancel(atm))/(cancelK*cancel(mol))xx383.0*cancelK)/(1.00*cancel(atm)#

#=??*L#

Under conditions of #1*atm# pressure, and a temperature of #110# #""^@C#, what volume of gas would decomposition of a #127.0*g# mass of ammonium carbonate evolve?