Bread_2_Toast
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- Feb 27, 2011
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- HSC
- 2009
I am having trouble getting the correct answer and cant work out where i am going wrong. Can anyone help?
Calculate the mass of cobalt (iii)flouride(molar mass = 115.93 g/mol) required to produce 65.00 ml of solution with a 0.2432 M concentration of flouride ions?
Step 1. - n = c*v
n = 0.2432 x 0.065
n = 0.0158
Step 2. COF3-
Step 3. ???m= n*m??
m= 0.0158 * 115.93
m = 1.831694 - X
Correct answer is 0.005269
Can't work out this last step of the equation.
Calculate the mass of cobalt (iii)flouride(molar mass = 115.93 g/mol) required to produce 65.00 ml of solution with a 0.2432 M concentration of flouride ions?
Step 1. - n = c*v
n = 0.2432 x 0.065
n = 0.0158
Step 2. COF3-
Step 3. ???m= n*m??
m= 0.0158 * 115.93
m = 1.831694 - X
Correct answer is 0.005269
Can't work out this last step of the equation.