QUESTION IMAGE
Question
compare the solubility of silver sulfite in each of the following aqueous solutions: 0.10 m agch₃coo, 0.10 m (nh₄)₂so₃, 0.10 m nh₄ch₃coo, 0.10 m nullo₃. options: more soluble than in pure water, similar solubility as in pure water, less soluble than in pure water.
Step1: Analyze Silver Sulfite Solubility
Silver sulfite (\(Ag_2SO_3\)) dissociates as \(Ag_2SO_3(s)
ightleftharpoons 2Ag^+(aq) + SO_3^{2-}(aq)\). We use the common ion effect: if a solution has a common ion (\(Ag^+\) or \(SO_3^{2-}\)) with \(Ag_2SO_3\), solubility decreases; no common ion means solubility similar or more (if ion reacts).
Step2: Analyze 0.10 M \(AgCH_3COO\)
\(AgCH_3COO\) dissociates to \(Ag^+(aq) + CH_3COO^-(aq)\). Common ion \(Ag^+\) with \(Ag_2SO_3\). Common ion effect: equilibrium shifts left, solubility of \(Ag_2SO_3\) is Less soluble than pure water.
Step3: Analyze 0.10 M \((NH_4)_2SO_3\)
\((NH_4)_2SO_3\) dissociates to \(2NH_4^+(aq) + SO_3^{2-}(aq)\). Common ion \(SO_3^{2-}\) with \(Ag_2SO_3\). Common ion effect: equilibrium shifts left, solubility of \(Ag_2SO_3\) is Less soluble than pure water. Wait, no—wait, original problem: maybe I misread. Wait, silver sulfite: \(Ag_2SO_3\), so \(SO_3^{2-}\) is common. So \((NH_4)_2SO_3\) has \(SO_3^{2-}\), so solubility less. But wait, the options: let's recheck.
Wait, 0.10 M \(NaNO_3\): no common ions with \(Ag_2SO_3\) (ions \(Na^+\), \(NO_3^-\)). So solubility Similar solubility as pure water (since no common ion, and \(NaNO_3\) is a neutral salt, no hydrolysis affecting \(Ag^+\) or \(SO_3^{2-}\)).
0.10 M \(NH_4CH_3COO\): \(NH_4^+\) and \(CH_3COO^-\). \(NH_4^+\) hydrolyzes to \(H^+\), \(CH_3COO^-\) hydrolyzes to \(OH^-\), but no common ion with \(Ag_2SO_3\). Wait, no—wait, silver sulfite: \(Ag^+\) and \(SO_3^{2-}\). \(NH_4CH_3COO\) has no \(Ag^+\) or \(SO_3^{2-}\), so solubility similar? No, wait, maybe I made a mistake. Let's list each:
- \(0.10\ M\ AgCH_3COO\): provides \(Ag^+\) (common ion), so solubility of \(Ag_2SO_3\) is Less soluble than pure water (common ion effect).
- \(0.10\ M\ (NH_4)_2SO_3\): provides \(SO_3^{2-}\) (common ion), so solubility of \(Ag_2SO_3\) is Less soluble than pure water? Wait, no—wait the problem is to compare each solution:
Wait, the top boxes are the solutions: \(0.10\ M\ AgCH_3COO\), \(0.10\ M\ (NH_4)_2SO_3\), \(0.10\ M\ NH_4CH_3COO\), \(0.10\ M\ NaNO_3\). The bottom boxes are the solubility comparisons.
Let's correct:
- \(0.10\ M\ AgCH_3COO\): common ion \(Ag^+\) → solubility of \(Ag_2SO_3\) is Less soluble than pure water.
- \(0.10\ M\ (NH_4)_2SO_3\): common ion \(SO_3^{2-}\) → solubility of \(Ag_2SO_3\) is Less soluble than pure water? Wait, no—wait, maybe I messed up. Wait, silver sulfite: \(Ag_2SO_3\) dissociates into \(2Ag^+ + SO_3^{2-}\). So:
- \(AgCH_3COO\) gives \(Ag^+\) (common ion) → solubility decreases (less than pure water).
- \((NH_4)_2SO_3\) gives \(SO_3^{2-}\) (common ion) → solubility decreases (less than pure water).
- \(NH_4CH_3COO\): \(NH_4^+\) and \(CH_3COO^-\). No common ion. But \(NH_4^+\) hydrolyzes to \(H^+\), \(CH_3COO^-\) to \(OH^-\), but does that affect \(Ag_2SO_3\)? \(SO_3^{2-}\) is a base, so \(H^+\) from \(NH_4^+\) hydrolysis would react with \(SO_3^{2-}\): \(SO_3^{2-} + H^+
ightleftharpoons HSO_3^-\). This removes \(SO_3^{2-}\) from solution, shifting \(Ag_2SO_3\) dissociation right, so solubility More soluble than pure water? Wait, this is a complex case. But maybe the problem simplifies:
- \(NaNO_3\): no common ions, no hydrolysis affecting \(Ag^+\) or \(SO_3^{2-}\) → Similar solubility as pure water.
Let's re-express the correct matches (assuming standard common ion effect for simple cases, ignoring hydrolysis for some):
- \(0.10\ M\ AgCH_3COO\): common \(Ag^+\) → Less soluble than pure water.
- \(0.10\ M\ (NH_4)_2SO_3\): common \(SO_3^…
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- \(0.10\ M\ AgCH_3COO\) → Less soluble than pure water.
- \(0.10\ M\ (NH_4)_2SO_3\) → Less soluble than pure water.
- \(0.10\ M\ NH_4CH_3COO\) → More soluble than pure water.
- \(0.10\ M\ NaNO_3\) → Similar solubility as pure water.
(Note: The exact matching depends on the problem's intended complexity, but the key is applying the common ion effect and hydrolysis for ion removal.)