Asked by STACY
how many grams of sodium carbonate are needed to prepare 0.250 L of an 0.100 M aqueous solution of sodium ions?
well normally you go moles=grams/molar mass than M= moles/L
but when looking for grams? what do you do........multiple .250 by .100 than divide by the molar mass of 105.988??
well normally you go moles=grams/molar mass than M= moles/L
but when looking for grams? what do you do........multiple .250 by .100 than divide by the molar mass of 105.988??
Answers
Answered by
DrBob222
You work the problem backwards.
moles = M x L.
Solve for moles. You got that far.
Then moles = grams/molar mass.
MULTIPLY (not divide) moles x molar mass.
moles = M x L.
Solve for moles. You got that far.
Then moles = grams/molar mass.
MULTIPLY (not divide) moles x molar mass.
Answered by
STACY
Soooo
Moles= MxL (0.100M)(0.250L)=0.025
than multiply moles by molar mass
(0.025)(105.988)= 2.65g
So my answer is 2.65g but the book says it's 1.32g? What am I overlooking.....man I hate chemistry =(
Moles= MxL (0.100M)(0.250L)=0.025
than multiply moles by molar mass
(0.025)(105.988)= 2.65g
So my answer is 2.65g but the book says it's 1.32g? What am I overlooking.....man I hate chemistry =(
Answered by
Kevin
Well, you have to read the question carefully. It says aqueous solution of sodium ions, not sodium carbonate. So you have to divide 2.65g by 2. We use two in this question because there are 2 moles of Na in 1 mole of Na2CO3.
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