Hey I need help with this problem
Al(NO3)3(aq) + 3 KOH(aq) ---> Al(OH)3 (s) + 3 KNO3 (aq)
What mass of aluminum hydroxide could form by the reaction of 40 mL of 0.1 M Al(NO3)3(aq) with an excess of 0.2 M KOH?
I guess what's really confusing me is "with an excess" part. I don't know if an extra step is required there? Or am I looking too deeply into it.
Also, when it says to give mass it wants the answer in grams, correct? But it gives 40 mL in the problem so I assume we deal with molarity so mmol/mL..I guess convert mmol into milligrams? I don't know, I'm so confused with this problem
I tried first converting 0.1 M of Al(NO3)3 into mmols with 40 mL and I got 4 mmol Al(NO3)3 and then converted that into mmols of KOH but that's where I got confused...I wasn't sure if I should use 0.2 or 3 mmol of KOH to convert it.
Please help
*Edit: I got 20.8 mg but I dont think it's right
Here's my work:
0.1 mmol Al(NO3)3/mL * 40 mL = 4 mmol Al(NO3)3
4 mmol Al(NO3)3 * 0.2 mmol KOH / 1 mmol Al(NO3)3 = 0.8 mml KOH = 0.0008 mol KOH
0.0008 mol KOH * 1 mol Al(OH)3 / 3 mol KOH = 0.000267 mol Al(OH)3
0.000267 mol Al(OH)3 * 78 grams/mol = 0.0208 grams = 20.8 milligrams
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