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Limiting Reagent or Reactant

What weight o...

Question

What weight of AgCl will be precipitated when a solution containing 4.77 g of NaCl is added to a solution of 5.77 g of $A g N O_{3}$ ?
(Molar mass of Na = 23 g/mol, Cl = 35.5 g/mol, Ag = 108 g/mol)

3.23 g

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5.23 g

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3.88 g

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4.88 g

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Solution

The correct option is D 4.88 g
The given balanced chemical equation is,
$A g N O_{3} + N a C l \to A g C l + N a N O_{3}$

Molar mass of NaCl = (23 + 35.5) g/mol = 58.5 g/mol

Molar mass of $A g N O_{3} = (108 + 48 + 14)$ g/mol
= 170 g/mol

$4.77 g o f N a C l = \frac{4.77}{58.5}$ mol
$N a C l$ = 0.082 mol

$5.77 g o f A g N O_{3} = \frac{5.77}{170} m o l o f A g N O_{3} = 0.034 m o l$

Thus $A g N O_{3}$ is the limiting reagent here.

So, moles of AgCl formed in the reaction = 0.034

Again. Molar mass of AgCl is,
$= (108 + 35.5) g / m o l = 143.5 g / m o l$

Hence, the mass of AgCl produced $= 143.5 \times 0.034 g = 4.879 g$

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