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The pH of an iron sulfate solution can vary depending on its concentration and the presence of other ions or compounds. Generally, iron sulfate (FeSO₄) is slightly acidic when dissolved in water, often resulting in a pH around 3 to 4. This acidity is primarily due to the hydrolysis of iron ions, which can release hydrogen ions into the solution. Therefore, the exact pH can differ based on specific conditions and concentrations.

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The pH of aluminum sulfate solution is typically around 3.0 to 4.0.


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Granular potassium sulfate does not have a pH. A pH value can only be given to a solution.


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When iron is placed in copper sulfate solution, a chemical reaction occurs where the iron displaces the copper in the solution, forming iron sulfate and copper metal. This is known as a displacement reaction.


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Iron sulfate solution typically appears pale green or pale blue in color.


What is the PH of copper sulphate?

The pH of copper sulfate solution typically ranges from 4 to 6. It is acidic due to the presence of the sulfate anions in the solution. The exact pH may vary depending on the concentration of the solution.


What happens when you add iron to magnesium sulfate?

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When an iron nail is placed in a copper sulfate solution, a single displacement reaction occurs. The iron will displace the copper in the solution, forming iron sulfate and depositing copper on the nail, causing it to turn a brownish color due to the presence of copper.


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The pH of a solution containing ammonium sulfate will depend on its concentration. Since ammonium sulfate is a salt formed from a weak base (ammonia) and a strong acid (sulfuric acid), it tends to be slightly acidic, especially at higher concentrations. A 0.1 M solution of ammonium sulfate, for example, typically has a pH around 5.5.