Asked by Ashley
Imagine that you are in chemistry lab and need to make 1.00 of a solution with a pH of 2.50.
You have in front of you
100 of 7.00×10−2 , HCL
100 of 5.00×10−2 , and NaOH
plenty of distilled water.
You start to add HCL to a beaker of water when someone asks you a question. When you return to your dilution, you accidentally grab the wrong cylinder and add some NaOH . Once you realize your error, you assess the situation. You have 81.0 ml of HCl and 90.0ml of NaOH left in their original containers.
Assuming the final solution will be diluted to 1.00L, how much more HCl should you add to achieve the desired pH?
You have in front of you
100 of 7.00×10−2 , HCL
100 of 5.00×10−2 , and NaOH
plenty of distilled water.
You start to add HCL to a beaker of water when someone asks you a question. When you return to your dilution, you accidentally grab the wrong cylinder and add some NaOH . Once you realize your error, you assess the situation. You have 81.0 ml of HCl and 90.0ml of NaOH left in their original containers.
Assuming the final solution will be diluted to 1.00L, how much more HCl should you add to achieve the desired pH?
Answers
Answered by
bobpursley
pH=log(H)
2=log H
H=1E-2=.01M
HCl net must be .01moles.
You have .009*7E-2 moles or .009*.063 moles
So additional moles must be .01-above.
additionvolumeHCL=additionalmole/7E-2 in liters.
check my thinking.
2=log H
H=1E-2=.01M
HCl net must be .01moles.
You have .009*7E-2 moles or .009*.063 moles
So additional moles must be .01-above.
additionvolumeHCL=additionalmole/7E-2 in liters.
check my thinking.
Answered by
Anonymous
your answer is pretty cracked out, if you gona help, show your steps and help
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