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​What is the concentration of the solution prepared by dissolving 2.35 g of KBr (M = 119 g/mol) in 250 mL of water?
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​What is the concentration of the solution prepared by dissolving 2.35 g of KBr (M = 119 g/mol) in 250 mL of water?

User James Nix
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1 Answer

6 votes

Answer:

The concentration of KBr is
C = 0.07899 \ mol L^(-1)

Step-by-step explanation:

From the question we are told that

The mass of KBr is
m_(KBr) = 2.35 \ g

The molar mass of KBr is
M_(KBr) = 119 g/mol

Volume of water is
V = 250 \ mL = 250 *10^(-3) = 0.250 \ L

This implies that the volume of the solution is
V = 250 mL

The number of moles of KBr is


n = (m_(KBr))/(M_(KBr))

Substituting values


n = (2.35)/(119)


n = 0.01975 \ mol

The concentration of KBr is mathematically represented as


C = (0.01975)/(0.250)


C = 0.07899 \ mol L^(-1)

User Andrew Hardiman
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