The balanced net ionic equation for the first reaction that occurred is a. 2 Ag(s) + 2 H(aq) → H₂(g) + 2 Ag (aq) b. Cu(s) + 2 H*(aq) → H₂(g) + Cu²(aq) Pb(s) + 2 H(aq) → H₂(g) + Pb² (aq) Mg(s) + 2 H*(aq) → H₂(g) + Mg²+ (aq) C. Use the following information to answer the next_questions. A student dipped 12.50 g strips of four different metals, Ag(s), Cu(s), Pb(s), and Mg(s). into a beaker containing 250 mL of 1.00 mol/L HCl(aq) in order to determine an activity series. One of the metals reacted immediately and vigorously with the acid. d.

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Chapter1: Chemical Foundations
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The balanced net ionic equation for the first reaction that occurred is
a.
2 Ag(s) + 2 H(aq) → H₂(g) + 2 Ag*(aq)
b.
Cu(s) + 2 H*(aq) → H₂(g) + Cu²(aq)
Pb(s) + 2 H*(aq) → H₂(g) + Pb² (aq)
Mg(s) + 2 H*(aq) → H₂(g) + Mg² (aq)
C.
Use the following information to answer the next_questions.
A student dipped 12.50 g strips of four different metals, Ag(s), Cu(s), Pb(s), and Mg(s).
into a beaker containing 250 mL of 1.00 mol/L HCl(aq) in order to determine an activity
series. One of the metals reacted immediately and vigorously with the acid.
d.
Transcribed Image Text:The balanced net ionic equation for the first reaction that occurred is a. 2 Ag(s) + 2 H(aq) → H₂(g) + 2 Ag*(aq) b. Cu(s) + 2 H*(aq) → H₂(g) + Cu²(aq) Pb(s) + 2 H*(aq) → H₂(g) + Pb² (aq) Mg(s) + 2 H*(aq) → H₂(g) + Mg² (aq) C. Use the following information to answer the next_questions. A student dipped 12.50 g strips of four different metals, Ag(s), Cu(s), Pb(s), and Mg(s). into a beaker containing 250 mL of 1.00 mol/L HCl(aq) in order to determine an activity series. One of the metals reacted immediately and vigorously with the acid. d.
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