What mass of barium chloride is required to make a #100*cm^3# volume of #0.25*mol*L^-1# solution with respect to #BaCl_2(aq)#?

1 Answer
anor277
Jun 24, 2017

Approx. #5*g#.........

Explanation:

#"Concentration"="Moles of solute (mol)"/"Volume of solution (L)"#

And thus the product #"volume"xx"concentration"="moles of solute."#

And thus..........

#n_(BaCl_2)=0.25*mol*L^-1xx100*cm^3xx10^-3*L*cm^-3#

#=0.025*mol# #BaCl_2#

And since #"no. of moles"="mass"/"molar mass"#

#"mass"=0.025*cancel(mol)xx208.23*g*cancel(mol^-1)=??g#

All I have done here is to use the given quotient that defines #"concentration"#, and divided or multiplied to give the quantity I want. As a check on my arithmetic, I included the units of each quantity. The fact that I clearly got an answer in #"grams"# for a question that asked for an answer in #"grams"# persuades me that I got the order of operations right (for once!).

Related questions
See all questions in Molarity
Impact of this question
1740 views around the world
You can reuse this answer
Creative Commons License