Q4.22P - Chemistry: Molecular Nature Of Matter And Change | StudyQuestionHub

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Q4.22P

Question

To study a marine organism, a biologist prepares a 1.00-kg sample to simulate the ion concentrations in seawater. She mixes 26.5 g of NaCl, 2.40 g of MgCl2, 3.35 g of MgSO4, 1.20 g of CaCl2, 1.05 g of KCl, 0.315 g of NaHCO3, and 0.098 g of NaBr in distilled water.

(a) If the density of the solution is 1.025 g/cm3, what is the molarity of each ion?

(b) What is the total molarity of alkali metal ions?

(c) What is the total molarity of alkaline earth metal ions?

(d) What is the total molarity of anions?

Step-by-Step Solution

Verified

Answer

(a)the molarity of each ion is

${InNaCl, Na}^{+} {= 0.465, Cl}^{-} =0.465 In Mg {Cl}_{2,} {Mg}^{2 +} {= 2.58 x 10}^{- 2} {Cl}^{-} = {5.16×10}^{- 2} {In MgSO}_{4} {, Mg}^{2 +} {= 2.85 ×10}^{-2} {SO}_{4}^{2-} {=2.85×10}^{-2} {In CaCl}_{2,} {, Ca}^{2+} {=1.11 ×10}^{- 2} {Cl}^{-} {=2.22×10}^{-2} {In KCl, K}^{+} {= 1.44×10}^{-2} {Cl}^{-} {=1.44×10}^{-2} {In NaHCO}_{3} {Na}^{+} {=3.84 ×10}^{-3} HC {O_{3}}^{-} {=3.84 ×10}^{-3} In {NaBr Na}^{+} {=9.76×10}^{-4} {Br}^{-} {=9.76×10}^{-4}$

(b)the total molarity of alkali metal ions is $0.484 M$

(c)the total molarity of alkaline earth metal ions is $6.54 x 10^{- 2} M$

(d)the total molarity of anions is $0.587 M$

1Step 1: the given values are:

26.5 g of NaCl

2.40 g of MgCl₂

3.35 g of MgSO₄

1.20 g of CaCl₂

1.05 g of KCl

0.315 g of NaHCO₃

0.098 g of NaBr

2Step 2: Now do the calculation part, first, find out the volume and then molarity of the solution and we can easily find out the other values also as follows:

$\begin{array}{rcl} (a) v o l u m e o f t h e s a m p l e & = & (1000 g m) (\frac{1 c m^{3}}{1.025 g m}) (\frac{1 l i t}{1000 c m^{3}}) \\ = & 0.976 l i t \end{array}$

Molarity can find out by dividing moles by volume:

For NaCl

$\begin{array}{rcl} m o l a r i t y o f N a C l & = & \frac{(26.5 g m N a C l) (\frac{1 N a C l}{58.44 g m N a C l})}{0.976 l i t} \\ = & 0.465 x 10^{22} m o l / l i t \end{array}$

The molarity of each ion is:

$N a^{+} i o n s = (0.465 \frac{m o l N a C l}{l i t}) x (\frac{1 m o l N a^{+}}{1 m o l N a C l}) = 0.465 M N a^{+} C l^{-} i o n s = (0.465 \frac{m o l N a C l}{l i t}) x (\frac{1 m o l C l^{-}}{1 m o l N a C l}) = 0.465 M C l^{-}$

For MgCl₂

$\begin{array}{rcl} m o l a r i t y o f M g C l_{2} & = & \frac{(2.40 g m M g C l_{2}) (\frac{1 m o l M g C l_{2}}{95.21 g m M g C l_{2}})}{0.976 l i t} \\ = & 2.58 x 10^{- 2} m o l / l i t \end{array}$

The molarity of each ion is:

$M g^{2 +} i o n s = (2.58 x 10^{- 2} \frac{m o l M g C l_{2}}{l i t}) x (\frac{1 m o l M g^{2 +}}{1 m o l M g C l_{2}}) = 2.58 x 10^{- 2} M M g^{2 +} C l^{-} i o n s = (2.58 x 10^{- 2} \frac{m o l M g C l_{2}}{l i t}) x (\frac{2 m o l C l^{-}}{1 m o l M g C l_{2}}) = 5.16 x 10^{- 2} M C l^{-}$

The molarity of each ion is:

For MgSO₄

$\begin{array}{rcl} m o l a r i t y o f M g S O_{4} & = & \frac{(3.35 g m M g S O_{4}) (\frac{1 m o l M g S O_{4}}{120.38 g m M g S O_{4}})}{0.976 l i t} \\ = & 2.85 x 10^{- 2} m o l / l i t \end{array}$

The molarity of each ion is:

$M g^{2 +} i o n s = (2.85 x 10^{- 2} \frac{m o l M g S O_{4}}{l i t}) x (\frac{1 m o l M g^{2 +}}{1 m o l M g S O_{4}}) = 2.85 x 10^{- 2} M M g^{2 +} S {O_{4}}^{-} i o n s = (2.85 x 10^{- 2} \frac{m o l M g S O_{4}}{l i t}) x (\frac{2 m o l C l^{-}}{1 m o l M g S O_{4}}) = 2.85 x 10^{- 2} M S {O_{4}}^{-}$

For CaCl₂

$\begin{array}{rcl} m o l a r i t y o f C a C l_{2} & = & \frac{(1.20 g m C a C l_{2}) (\frac{1 m o l C a C l_{2}}{110.98 g m C a C l_{2}})}{0.976 l i t} \\ = & 1.11 x 10^{- 2} m o l / l i t \end{array}$

The molarity of each ion is:

$C a^{2 +} i o n s = (1.11 x 10^{- 2} \frac{m o l C a C l_{2}}{l i t}) x (\frac{1 m o l C a^{2 +}}{1 m o l C a C l_{2}}) = 1.11 x 10^{- 2} M C a^{2 +} C {l_{2}}^{-} i o n s = (1.11 x 10^{- 2} \frac{m o l C a C l_{2}}{l i t}) x (\frac{2 m o l C l^{-}}{1 m o l C a C l_{2}}) = 2.22 x 10^{- 2} M C l^{-}$

For KCl

$\begin{array}{rcl} m o l a r i t y o f K C l & = & \frac{(1.05 g m K C l) (\frac{1 m o l K C l}{74.55 g m K C l})}{0.976 l i t} \\ = & 1.44 x 10^{- 2} m o l / l i t \end{array}$

The molarity of each ion is:

$K^{+} i o n s = (1.44 x 10^{- 2} \frac{m o l K C l}{l i t}) x (\frac{1 m o l K^{+}}{1 m o l K C l}) = 1.44 x 10^{- 2} M K^{+} C l^{-} i o n s = (1.44 x 10^{- 2} \frac{m o l K C l}{l i t}) x (\frac{1 m o l C l^{-}}{1 m o l K C l}) = 1.44 x 10^{- 2} M C l^{-}$

For NaHCO₃

_{$\begin{array}{rcl} m o l a r i t y o f N a H C O_{3} & = & \frac{(0.315 g m N a H C O_{3}) (\frac{1 m o l N a H C O_{3}}{84.01 g m N a H C O_{3}})}{0.976 l i t} \\ = & 3.84 x 10^{- 3} m o l / l i t \end{array}$}

The molarity of each ion is:

$N a^{+} i o n s = (3.84 x 10^{- 3} \frac{m o l N a H C O_{3}}{l i t}) x (\frac{1 m o l N a^{+}}{1 m o l N a H C O_{3}}) = 3.84 x 10^{- 3} M N a^{+} H C {O_{3}}^{-} i o n s = (3.84 x 10^{- 3} \frac{m o l N a H C O_{3}}{l i t}) x (\frac{1 m o l H C {O_{3}}^{-}}{1 m o l N a H C O_{3}}) = 3.84 x 10^{- 3} M H C {O_{3}}^{-}$

For NaBr

$\begin{array}{rcl} m o l a r i t y o f N a B r & = & \frac{(0.098 g m N a B r) (\frac{1 m o l N a B r}{102.89 g m N a B r})}{0.976 l i t} \\ = & 9.76 x 10^{- 4} m o l / l i t \end{array}$

The molarity of each ion is:

$N a^{+} i o n s = (9.76 x 10^{- 4} \frac{m o l N a B r}{l i t}) x (\frac{1 m o l N a^{+}}{1 m o l N a B r}) = 9.76 x 10^{- 4} M N a^{+} B r^{-} i o n s = (9.76 x 10^{- 4} \frac{m o l N a B r}{l i t}) x (\frac{1 m o l B r^{-}}{1 m o l N a B r}) = 9.76 x 10^{- 4} M B r^{-}$

(b) the alkali metals in the given mixture are Na and K, therefore the total molarity of alkali metal ions is:
$0.456 M + 1.44 x 10^{- 2} M + 3.84 x 10^{- 3} M + 9.76 x 10^{- 4} M = 0.484 M$
(c) the alkali earth metals in the given mixture are Mg and Ca, therefore the total molarity of alkali metal ions is:
$2.58 x 10^{- 2} M + 2.85 x 10^{- 2} M + 1.11 x 10^{- 2} M = 6.54 x 10^{- 2} M$
(d)the total molarity of anions in the mixture is:
$0.456 M + 5.16 x 10^{- 2} M + 2.85 x 10^{- 2} M + 2.22 x 10^{- 2} + 1.44 x 10^{- 2} M + 3.84 x 10^{- 3} M + 9.76 x 10^{- 4} M = 0.587 M$

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