QUESTION IMAGE
Question
formation of ammonia
figure 2 the diagram of the molecules and
the chemical equation are both models that
represent the formation of ammonia from
nitrogen and hydrogen gas.
- claim circle the product and
underline the coefficients in the
chemical equation.
- evidence how many atoms of hydrogen
are in one molecule of ammonia?
- reasoning are any atoms created or
destroyed in this reaction? explain.
1. Claim
- Product: In a chemical equation, the product is on the right - hand side of the arrow. So, circle \(2NH_3\).
- Coefficients: Coefficients are the numbers in front of the chemical formulas. Underline \(1\) (for \(N_2\), since \(N_2\) can be thought of as \(1N_2\)), \(3\) (for \(3H_2\)), and \(2\) (for \(2NH_3\)).
2. Evidence
- The formula for ammonia is \(NH_3\). In one molecule of \(NH_3\), the subscript of \(H\) is \(3\). So, there are \(3\) hydrogen atoms in one molecule of ammonia.
3. Reasoning
- According to the law of conservation of mass (or atoms), in a chemical reaction, atoms are neither created nor destroyed. They are just rearranged.
- In the reaction \(N_2+3H_2
ightarrow2NH_3\), we can count the atoms:
- Nitrogen atoms:
- On the reactant side: \(1\) molecule of \(N_2\) has \(2\) nitrogen atoms.
- On the product side: \(2\) molecules of \(NH_3\), and each \(NH_3\) has \(1\) nitrogen atom, so \(2\times1 = 2\) nitrogen atoms.
- Hydrogen atoms:
- On the reactant side: \(3\) molecules of \(H_2\), and each \(H_2\) has \(2\) hydrogen atoms, so \(3\times2=6\) hydrogen atoms.
- On the product side: \(2\) molecules of \(NH_3\), and each \(NH_3\) has \(3\) hydrogen atoms, so \(2\times3 = 6\) hydrogen atoms.
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- Circle \(2NH_3\); underline \(1\) (for \(N_2\)), \(3\) (for \(3H_2\)), and \(2\) (for \(2NH_3\)).
- \(3\)
- No, atoms are neither created nor destroyed. There are \(2\) nitrogen atoms and \(6\) hydrogen atoms on both the reactant and product sides.