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KOH(aq) + CuSO4(aq) write the general and ionic equations for the reactions

User Marius Danila
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Answer

The general equation for the reaction is:


2KOH\left(aq\right)+CuSO_4\left(aq\right)\rightarrow K_2SO_4(aq)+Cu(OH)_2(s)

The ionic equation for the reaction is:


2K^+(aq)+2OH^-(aq)+Cu^(2+)(aq)+SO_4^(2-)\rightarrow2K^+(aq)+SO_4^(2-)+Cu(OH)_2(s)

Step-by-step explanation

Given unbalanced equation: KOH(aq) + CuSO4(aq)

The general equation for the reaction is:


2KOH\left(aq\right)+CuSO_4\left(aq\right)\rightarrow K_2SO_4(aq)+Cu(OH)_2(s)

The reaction type is a double displacement reaction.

The ionic equation for the reaction is:


2K^+(aq)+2OH^-(aq)+Cu^(2+)(aq)+SO_4^(2-)\rightarrow2K^+(aq)+SO_4^(2-)+Cu(OH)_2(s)
2K^+(aq)+2OH^-(aq)+Cu^(2+)(aq)+SO_4^(2-)\rightarrow2K^+(aq)+SO_4^(2-)+Cu(OH)_2(s)

Cross out the spectators' ions on both sides of the complete ionic equation to get the net ionic equation as shown below:


2OH^-(aq)+Cu^(2+)(aq)\rightarrow Cu(OH)_2(s)
User Vbn
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