3) Convert the following equations below to a net ionic equation and write it in the...
u. -4 3) Convert the following equations below to a net ionic equation and write it in the space provided. H2SO4 (aq.) + NaOH(aq.) → Na2SO4(aq.) + 2H2O(1) 4) Label the oxidation, reduction processes and oxidizing and reducing agents in the reaction given below a) Fe(s) + O2(g) → Fe2O3 (8)
Write the complete ionic and net ionic equations for each of the following reactions: To write complete ionic equations and net ionic equations follow the steps below: (I) Write the molecular equation and balance it. (II) Determine the state of each substance(gas, liquid, solid, aqueous). Use the solubility rules! (III) Write the ionic equation by breaking all the soluble ionic compounds (those marked with an (aq) into their respective ions. (IV) Write the net ionic equation by removing the spectator...
2. Balance the follwoing unbalanced chemicalequations. Then, write an ionic equation, and a net ionic equation for each equation. Identify the spectator ions a) CaCl2(aq) + K»PO4(aq) KCI(aq)+ Cast PO)(S) LIOH(aq) + H2SO4(aq) b) H2O) +Li2SO4(S) 3. In the reactions a) Pb(s) +2Ag' (aq)Pb (aq) +2Ag(s) b) Fe O3(s) +3CO(g)3Fe(s) + 3COg) Which species are oxidized and which are reduced? Which species are the oxidizing agents and which are the reducing agents ?
Write the half-reactions and the net ionic equations for these complete redox reactions 4 2NaCl (aq) + Br: (I) Cl: (g)2NaBr (aq) a) Oxidation half-reaction: Reduction half-reaction: CrCls (aq)+ Au (s) AuCl3(aq) Cr (s) - b) Oxidation half-reaction: Reduction half-reaction: Identify the oxidizing agent and the reducing agent in these complete redox reactions: 5. 5SO2-2Mn2+ 5so +3H2O a) 2MnO, +6H A) MnO B) So2 C) Mn2 D) SO E) H Oxidizing agent: b) 5Fe2 (aq) + MnO4 (ag) +8H'(aq)-5Fe (ag)+...
Reaction in Aquesous 1. Write the balanced molecular equation, complete ionic equation, and net ionic equation for the following: (5 pts) HI + K2CO3 → Complete ionic equation: Net ionic equation: TURN OVER → 2. A 31.5mL aliquot of H2SO4 of unknown concentration was titrated with 0.0134M NaOH. It took 23.9mL of NaOH to reach the endpoint of the titration. What is the concentration of the H2SO4? (5 pts) 3. In the following reaction, indicate the substance being oxidized, reduced,...
a) Balanced the following molecular equations for these reactions. b) Write the ionic equation for the reactions. c) Write the net ionic equation for the reactions. 2) KOH (aq) KMno4(aq)K2MnOs (aq)+O2(g) + H20 AICI (aq) + NaOH(aq) NaAI(OH)4(aq) + NaCI (aq)
In the space below, write the balanced chemical/molecular equation, the total ionic equation, and the net ionic equation: HCl(aq) + NaOH(aq) -> NH4Cl(aq) + NaOH(aq) -> AgNO3(aq) + Na2CO3(aq) -> BaCl2(aq) + Na2CO3(aq) -> HCl(aq) + Na2CO3(aq) -> All have a reaction.
Write balanced net ionic equation for the following reaction: Fe(OH)3(s)+H2SO4(aq)→? Express your answer as a chemical equation. Identify all of the phases in your answer. Write balanced net ionic equation for the following reaction: HClO3(aq)+NaOH(aq)→? Note that HClO3 is a strong acid. Express your answer as a chemical equation. Identify all of the phases in your answer.
1 of 1 1) Balance the following redox reaction: Al + Zn → A1 + Zn 2. Balance the follwoing unbalanced chemical equations. Then, write an ionic equation, and a net ionic equation for each equation. Identify the spectator ions a) CaCl(aq) + K3PO(aq) - KClaq) + CaPO(S) LiOH(aq) + H2SO4(aq) → H01) + LigSO4(s) 3. In the reactions a) Pb(s) + 2Ag (aq) - P** (aq) + 2Ag(s) b) FeO3(s) + 3C0(g) 3Fe(s) + 3C0 g) Which species are...
Identify the species (atoms/ elements) undergoing oxidation and reduction in the following equations, assign oxidation numbers to each, and write balanced net ionic equations. a) Cu(s) Cu2+(aq) + 2e- b) Cl2(aq) + 2e- Cl-(aq) c) Cu(s) + Cl2(aq) Cu2+(aq) + 2Cl-(aq) d) 4CuO(s) + CH4(g) 4Cu(s) + CO2(g) + 2H2O(l) e) 2CuSO4(aq) + 4KI(aq) 2CuI (aq) + 2K2SO4(aq) + I2(aq) f) Cu2O(s) + Fe(SO4)3 (aq) + H2SO4(aq) 2CuSO4(aq) + 2FeSO4(aq) + H2O(l)