0.5L AlCl3溶液中氯离子为9.03×10^22个,则AlCl3溶液的物质的量的浓度为?
A 0.03 B 1 C 0.05 D 0.04
人气:208 ℃ 时间:2020-06-11 04:14:14
解答
N(氯离子)=9.03×10^22,所以N(AlCl3)=3.01×10^22
n=N/NA,所以n(AlCl3)=3.01×10^22/6.02*10^23=0.05mol
C(AlCl3)=n(AlCl3)/V(AlCl3)=0.05mol/0.5L=0.1mol/L
推荐
猜你喜欢
- 冬天人们都喜欢吃冻豆腐,冻豆腐为什么成蜂窝状?
- 使河水迅速变清的方法有什么大神们帮帮忙
- His e______ are so confusing that I can't understand what he said
- 句型转换
- 已知数列{an}的前n项和为Sn,满足Sn=n2an-n2(n-1),且a1=1/2,求{an}的通项
- this is my watch 和here ismy watch 区别?
- 若点A(-5,a),B(-2,b),C(1,c)都在双曲线y=k/x(k
- 军训,向后转,是向左边转,还是向右边转?
