c(硫酸)= 19.6/(2+32+64)= 0.2摩爾
c(H2)= 0.2/2 = 0.1摩爾
c % =(65-2+32+16 * 4)* 0.2/(65-2+32+16 * 4)* 0.2+80.4 = 28.34%
所以答案是:28.34%
= = = =補充= = = =
意思是質量分數=硫酸鋅的質量/硫酸鋅的質量+水的質量。