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Anonymous snowman123
wrote...
A year ago
1. For the net ionic equation below write and label the oxidation and reduction half reaction and identify which species is acting as the oxidizing agent and reducing agent.

2 Fe3+(aq) +3 Zn(s) + →  3 Zn2+ (aq) + 2 Fe(s)








2. Create a reduction half-reaction table based on the information collected below.  Identify the strongest Oxidizing Agent and Reducing Agent in your table.


            2 Ce(s) + 3 Ni2+(aq)  → 2 Ce3+(aq)  + 3 Ni(s)

                   Pt(s) + 2 H+(aq) → no reaction

                  Ni(s) + 2 H+(aq)  → Ni2+(aq)  +H2(g)     

                    3 Sr(s) + 2 Ce3+(aq)  → 3 Sr3+(aq)  + 2 Ce(s)




3. Aqueous iron (III) nitrate and aqueous tin (II) bromide are mixed.

a) List all the species present and identify the SOA and SRA
                 




b) Write the oxidation half-reaction:





c) Write the reduction half-reaction:




d) Write the net equation:




e) State whether or not the reaction is spontaneous or non-spontaneous





4a) Balance the reaction below if it is in an acidic environment

TeO32−(aq)  →Te(s)     






4b) Is the reaction an oxidation or reduction half-reaction?






5. Use the half-reaction method to balance the following chemical reaction that takes place in acidic solution:

































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Anonymous
wrote...
A year ago
#1 and #2 are attachment.

Please consider posting a maximum of two questions per topic. Each one of these requires a lot of time to answer.
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Anonymous Author
wrote...
A year ago
thank you.
wrote...
A month ago
Thanks!
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