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How many mL of 0.200M KI would contain 0.0500 moles of KI? Please explain and show work.
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How many mL of 0.200M KI would contain 0.0500 moles of KI?

Please explain and show work.

User Rachell
by
4.6k points

2 Answers

4 votes

Answer:

250ml

Step-by-step explanation:

call it V

V*0.2=0.05 (moles)

so V=0.05/0.2 = 0.25l = 250ml

User Maxmithun
by
4.6k points
0 votes
  • Molarity=0.2M
  • No of moles=0.05mol

We know


\boxed{\Large{\sf Molarity=(No\:of\:moles\:of\:solute)/(Volume\:of\:solution\:in\;\ell)}}


\\ \Large\sf\longmapsto Volume\:of\:KI=(0.05)/(0.2)


\\ \Large\sf\longmapsto Volume\:of\:KI=0.25L


\\ \Large\sf\longmapsto Volume\:of\:KI=250mL

User LongFlick
by
4.4k points
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