Monday, August 15, 2011

How much NaNO3 is needed to prepare 225 mL of a 1.55 M solution of NaNO3?

29.6 grams, 85 grams/mol *1.55 moles/ liter = 131.75 gram liters, this times .225 liters cancels out the liters to give 29.6 grams
Posted by Dona Truehart at 12:10 PM

No comments:

Post a Comment

Subscribe to: Post Comments (Atom)