Solution Concentration: Molarity

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Discussion Overview

The discussion revolves around the preparation of molar solutions, specifically focusing on how to dilute a concentrated stock solution of HCl and how to prepare a solution of NiCl2 from its hexahydrate form. The scope includes practical application and mathematical reasoning related to solution concentration.

Discussion Character

  • Homework-related
  • Mathematical reasoning

Main Points Raised

  • One participant outlines the calculation for preparing a 0.50 M solution of HCl from a 12 M stock solution, concluding that 40 mL of the stock is needed.
  • Another participant confirms the calculation but emphasizes the importance of adding water to reach the final volume of 1 L.
  • A different participant suggests an alternative approach by stating the dilution factor directly, noting that 40 mL of stock should be diluted to 1 L.
  • One participant raises a concern about the accuracy of the concentrations and suggests using appropriate glassware for better measurement.
  • In a follow-up question, a participant inquires about preparing a 0.50 M solution of NiCl2 from NiCl2 * 6H2O, seeking guidance on the calculation.
  • Another participant advises that the same method applies, but highlights the need to account for the weight of water released during dissolution.
  • A later reply emphasizes the need to calculate the moles of NiCl2 needed, indicating that 0.5 moles of the hexahydrate is required as it contains the same amount of NiCl2.

Areas of Agreement / Disagreement

Participants generally agree on the method for preparing the HCl solution, but there are varying opinions on the precision of measurements and the approach to calculating the NiCl2 solution. The discussion remains unresolved regarding the best practices for accuracy in solution preparation.

Contextual Notes

Participants express uncertainty about the accuracy of the stock solutions and the implications of using different glassware for measurement. There are also considerations regarding the weight of water in the hexahydrate that are not fully resolved.

courtrigrad
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Hello all

I just need confirmation as to whether I am performing this problem correctly:

How would you prepare 1.00 L of a 0.50 M solution of HCl from a 12M stock reagent?

My solution:

1.00 L * (0.5 mol HCl/ L solution) = 0.5 mol HCl

V * (12 mol HCl / L solution) = 0.5 mol HCl

V = 40 mL

is this the correct volume?

any help is appreciated

thanks!
 
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seems right to me. except, remember to add the rest of the water to it.

you have the right idea, find the amount of moles you need, in this case .5, then find out how much of the original you need to get .5, then just dilute that amount up to the end amount you want, in this case 1 L.
 
thanks a lot

just have one more question

If i want to prepare 1.00 L of a 0.50 M solution of NiCl2 from the salt NiCl2 * 6H20, how would i go about in solving this?
 
The same way, except remember to subtract (or add, depending on how you do it) the weight of the H20 as it will be released when it dissolves in the solution.
 
courtrigrad said:
Hello all

My solution:

1.00 L * (0.5 mol HCl/ L solution) = 0.5 mol HCl

V * (12 mol HCl / L solution) = 0.5 mol HCl

V = 40 mL

is this the correct volume?

Yeah, well I would, in this case, skip the 0.5 mol HCl step and just state that I want to dilute the stock solution with a factor 24 (12/0.5), which indeed means taking ~40mL (1/24 of 1000mL) of the stock, if 1L is what you wanted, and add water (and mix!) until the volume is 1L.
Also think about accuracies. How close to 12 M is the concentrated hydrochloric acid and how close to 0.5 M (as well as "how accurately defined", which is a totally different question) do you want the contration of your dilute solution to be? Seems to me you can use the most convenient (and probably least accurate) glassware in this case :cool:
 
courtrigrad said:
...V = 40 mL...is this the correct volume?
41.7 ml is a better answer, since you can easily read a 50 ml graduated cylinder that closely.
 
courtrigrad said:
thanks a lot

just have one more question

If i want to prepare 1.00 L of a 0.50 M solution of NiCl2 from the salt NiCl2 * 6H20, how would i go about in solving this?
Here's a tip...first figure out how many moles of solute you need; you need 0.5 mole of NiCl2. That means you need 0.5 mole of the hexahydrate, too, since each mole of it contains a mole of NiCl2.
 

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