A 100.0 mL portion of 0.250 M calium nitrate solution is mixed with 400.0 mL of .100M nitric acid solution. What is the final concentration of the nitrate ion?

Well, you are right. The Ca(NO3)2 IS 0.25 M just as you said; however, the problem asks for NO3^- and since there are two moles NO3^- per 1 mole Ca(NO3)2, that makes the NO3^- just twice or 0.250 x 2 = 0.5 M and you took 100 mL of that so M x L = moles = 0.05 moles just like Bob P wrote.

thank doctor bob pursley that's right i know who you are.

No. I can guarantee you that Bob P and DrBob222 are NOT the same person. In fact, he and I live about 400 miles from each other. I just picked up your confusion over the nitrate ion because he wasn't on-line at the moment.

o oops hahah thankss for answering my question!

1)How many milliliters of 1.5 M NaOH will react completely with 448 mL of 0.600 M HCl?

NaOH (aq) + HCl (aq) �¨ NaCl (aq) + H2O (l)

2)What is the percent yield of the following reaction if 15 g H2O are obtained from the combustion of 18 g C2H6?

2 C2H6 (g) + 7 O2 (g) �¨ 4 CO2 (g) + 6 H2O (g)

3)What is the molarity of a solution in which 6.4 g HCl is dissolved in enough water to make 2.4 L solution?

4)How many atoms of H are there in 4.3 g CH4?

I REALLY NEED HELP SOLVING THESE CHEM PROBLEMS