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Ch.19 - Electrochemistry
McMurry - Chemistry 8th Edition
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Capitolo 19, Problema 53b

Write balanced net ionic equations for the following reactions in basic solution. (b)

Guida verificata passo dopo passo
1
insert step 1: Identify the reactants and products in the given chemical reaction.
insert step 2: Write the balanced molecular equation for the reaction.
insert step 3: Separate the aqueous compounds into their respective ions to write the complete ionic equation.
insert step 4: Identify and cancel out the spectator ions to derive the net ionic equation.
insert step 5: Ensure the net ionic equation is balanced in terms of both mass and charge, and adjust for basic conditions by adding OH⁻ ions as needed.

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Net Ionic Equations

Net ionic equations represent the actual chemical species that participate in a reaction, excluding spectator ions. They are derived from complete ionic equations by removing ions that do not change during the reaction. This simplification helps to focus on the essential components and the changes occurring in the reaction.
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Net Ionic Equations

Basic Solution

A basic solution has a pH greater than 7 and contains hydroxide ions (OH-). In reactions occurring in basic solutions, the presence of OH- can influence the formation of products and the overall reaction mechanism. It is important to account for hydroxide ions when balancing equations in such environments.
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Balancing Chemical Equations

Balancing chemical equations involves ensuring that the number of atoms for each element is the same on both sides of the equation. This is crucial for obeying the law of conservation of mass. In the context of net ionic equations, balancing also includes accounting for charges, ensuring that the total charge is equal on both sides.
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