Answered

At Westonci.ca, we make it easy for you to get the answers you need from a community of knowledgeable individuals. Get immediate answers to your questions from a wide network of experienced professionals on our Q&A platform. Discover detailed answers to your questions from a wide network of experts on our comprehensive Q&A platform.

For the equation below, write the oxidation half-reaction and the reduction half-reaction. 2Na + Cl2 -----> 2NaCl

Sagot :

jbferrado

Answer:

Oxidation half-reaction : Na(s) → Na⁺ + 1 e-

Reduction half-reaction: Cl₂ + 2 e- → 2 Cl⁻

Explanation:

Oxidation half-reaction: solid sodium (Na(s)) has an oxidation number of 0. It loses 1 electron and forms the cation Na⁺. So, the half-reaction is the following:

Na(s) → Na⁺ + 1 e-

Reduction half-reaction: chlorine gas (Cl₂) has an oxidation number of 0. Each atom of Cl gains 1 electron to form two Cl⁻ ions, according to the following half-reaction:

Cl₂ + 2 e- → 2 Cl⁻

The total oxidation-reduction reaction is obtained by adding the oxidation half-reaction multiplied by 2 (to balance the electrons) and the reduction half-reaction, as follows:

2 x (Na(s) → Na⁺ + 1 e-)

Cl₂ + 2 e- → 2 Cl⁻

--------------------------------

2Na(s) + Cl₂ → 2NaCl

We hope you found this helpful. Feel free to come back anytime for more accurate answers and updated information. Thank you for choosing our platform. We're dedicated to providing the best answers for all your questions. Visit us again. Westonci.ca is committed to providing accurate answers. Come back soon for more trustworthy information.