Дано
V(H2O)=128 mL
n(NaCL)=0.12 mol
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W(NaCL)-?
m(H2O)=V(H2O) / p(H2O) = 128/1=128 g
M(NaCL)=58.5 g/mol
m(NaCL)=n(NaCL)*M(NaCL)=0.12*58.5=7.02 g
W(NACL)= m(NaCL) / (m(NaCL)*m(H2O)) *100%
W(NaCL)= 7.02 / ( 7.02+128) * 100%=5.2%
ответ 5.2%