Now let's balance this methane combustion reaction step by step.First, let's count the atoms on each side of the equation.Before we start balancing, remember that coefficients multiply the entire molecule, while subscripts are part of the chemical formula.Let's start with carbon. We have one carbon atom on each side, so carbon is already balanced.Next, let's balance hydrogen. We have four hydrogen atoms in CH4, but only two in H2O. By adding a coefficient of 2 to H2O, we now have four hydrogen atoms on each side.Finally, let's balance oxygen. We now need two O2 molecules to provide enough oxygen atoms for CO2 and two H2O molecules.Let's verify our balanced equation. We now have equal numbers of each type of atom on both sides.Now that we've balanced our equation, let's verify our work using a systematic approach.We'll create a table to track the count of each element on both sides of the equation.Notice that while carbon is balanced, we still have issues with hydrogen and oxygen.Let's look at some common mistakes students make when balancing equations.One critical mistake is changing subscripts instead of using coefficients.The correct approach is to use coefficients to balance the equation.Let's review the proper verification method to ensure our equations are correctly balanced.After proper verification, we can be confident in our balanced equation.
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