Câu trả lời:
nCaCO3=0,02 mol=nCO2 ==>%C=(0,02.12):0,6=40%
m(bình tăng)=mCO2+mH2O=0,02.12+mH2O=1,24==>mH2O=0,36g
==>mH=(0,36.2):18=0,04 g
%H=6,67% =>%O=100-40-6,67=53,33%
CTĐGN CxHyOz
x:y:z=40/12 : 6,67 : 53,33/16
= 3,33 : 6,67 : 3,33 = 1: 2 : 1
=> CTĐGN : CH2O
CTPT : (CH2O)n M=30n=15.2 =>n=1
=> CTPT : CH2O