11. Complete and balance the equation for all of the reactions that will occur. If the reaction will not occur, explain why. (Table 17.2) :2+ 2+ (e) Cr(s) + Ni²+ (aq) → (f) Mg(s) + Ca²+ (aq) → (g) Cu(s) + H*(aq) → (h) Ag(s) + Al³+ (aq) → 550 STE (a) Al(s) + ZnCl₂(aq) → (b) Sn(s) + HCl(aq) →→→ (c) Ag(s) + H₂SO4(aq) → (d) Fe(s) + AgNO3(aq) →
11. Complete and balance the equation for all of the reactions that will occur. If the reaction will not occur, explain why. (Table 17.2) :2+ 2+ (e) Cr(s) + Ni²+ (aq) → (f) Mg(s) + Ca²+ (aq) → (g) Cu(s) + H*(aq) → (h) Ag(s) + Al³+ (aq) → 550 STE (a) Al(s) + ZnCl₂(aq) → (b) Sn(s) + HCl(aq) →→→ (c) Ag(s) + H₂SO4(aq) → (d) Fe(s) + AgNO3(aq) →
Chemistry: Principles and Reactions
8th Edition
ISBN:9781305079373
Author:William L. Masterton, Cecile N. Hurley
Publisher:William L. Masterton, Cecile N. Hurley
Chapter17: Electrochemistry
Section: Chapter Questions
Problem 9QAP: Write balanced net ionic equations for the following reactions in acid solution. (a) Liquid...
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Transcribed Image Text:11. Complete and balance the equation for all of the reactions that will
occur. If the reaction will not occur, explain why. (Table 17.2)
:2+
2+
(e) Cr(s) + Ni²+ (aq) →
(f) Mg(s) + Ca²+ (aq) →
(g) Cu(s) + H*(aq) →
(h) Ag(s) + Al³+ (aq) →
G
SISTE
(a) Al(s) + ZnCl₂(aq) →
(b) Sn(s) + HCl(aq) →→→
(c) Ag(s) + H₂SO4(aq) →
(d) Fe(s) + AgNO3(aq) →

Transcribed Image Text:Reduction
Oxidation
number
-6
-7
-5
-4 -3
-2
Oxidation (loss of electrons)
-1 0 +1
Reduction (gain of electrons)
+2+3+4x +51 +6+7
+
WITH 02
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