1. Write balanced net ionic equations to explain the observations in the options assigned. (All reactions...
Write balanced molecular, total ionic, and net ionic equations for the following aqueous single-displacement reactions. (5 points) Write balanced molecular, total ionic, and net ionic equations for the following aqueous single- 3. displacement reactions. Also tell what is oxidized and what is reduced in each. aluminum + iron(l) nitrate a. Molecular: Total lonic Net lonic Reduced: Oxidized: acetic acid+ tin, which forms the tin(ll) ion in these reactions b. Molecular: Total lonic: Net lonic: Reduced: Oxidized: zinc+ gold(iIlI) chloride C....
complete each of the following reactions and write the balanced molecular and net ionic equations for each reaction and identify the reaction type. For any redox reactions, show the oxidations numbers, identify the substance oxidized and the substance reduced, the oxidizing agent, and the reducing agent, and write the half reactions for oxidation and reduction. a. Lead II nitrate and sodium iodide react to form products b. Aluminum hydroxide is neutralized by sulfuric acid c. sulfur burns in oxygen to...
Writing Balanced Molecular, Ionic, And Net Ionic Equations Write Balanced Net-Ionic Equations for the following Reactions in Aqueous Solution: 1. Copper metal (Cu(s)) is immersed in an aqueous solution of silver nitrate (AgNO3). The solution turns light blue and a silver coating appears on the copper. 2. Dilute solutions of antimony(III) chloride and sodium sulfide are mixed to give a precipitate. 3. Dilute solutions of silver nitrate and potassium iodide are combined and give a yellow precipitate. 4. Dilute solutions...
Name Classwork: Ch. 4 Chemical Reactions 1. Write the balanced ionic equation and net ijonic equation for the following molecular equation. 000H +bos be)os H + 8 2. Write the balanced molecular equation, ionie equation, and net ionic equation for the following reaction. Iron(III) sulfate is added to sodium sulfide to produce iron(II) sulfide and sodium sulfate. 3. Balance the following redox reaction, identify the oxidation states of each element, identify which elements are oxidized and which are reduced, write...
1) The hydrochloric acid is mixed with these substances write the balanced net ionic equations for each reaction a) Magnesium hydroxide b) Aluminum hydroxide c) sodium carbonate d) sodium bicarbonate
Write the balanced molecular, ionic, and net ionic equations. Is this a redox reaction? No solid is produced, only an aqueous green solution. 0.1 M iron (iii) chloride + 0.2 M copper (ii) sulfate yields a GREEN SOLUTION (aq)
1. Write molecular, total ionic, and net ionic equations for the following potassium sulfite silver aqueous double-displacement reactions. a. iron(II) iodide and lithium phosphate c. and nitrous acid b. manganese(II) hydroxide and hydrochloric acid d. acetate and aluminum bromide
E. Reactions of Salt Mixtures Write balanced molecular, ionic, and net ionic equations for the two reactions studied: Test Tube 1. NO 2003 [ CuSO4 Balanced molecular equation Balanced ionic equation Balanced net ionic equation Test Tube 2. N93PO4 + NiCl2 Balanced molecular equation Balanced ionic equation Balanced net ionic equation Questions different from that ol
A) Write balanced (a) molecular, (b) total ionic, and (c) net ionic equations for the following reactions. Also indicate the reaction type. Reaction Type 1. Solid copper(II) hydroxide decomposes on heating. Reaction Type 2. Metallic copper reacts with aqueous nitric acid to form aqueous copper(II) nitrate, nitrogen dioxide gas, and water. Reaction Type 3. Aqueous copper(II) nitrate reacts with aqueous sodium hydroxide. Reaction Type 4. Metallic zinc reacts with aqueous copper(II) sulfate.
Write molecular and net ionic equations for the following reactions. (Include state symbols and balance reactions if necessary) 1) Copper(II) sulfate and sodium hydroxide solutions are combined: 2) A piece of solid aluminum metal is put into an aqueous solution of lead(II) nitrate: 3) Solutions of hydrobromic acid and potassium carbonate are combined: 4) Aqueous solutions of sodium hydroxide and hydrochloric acid are combined: 5) Aqueous solutions of silver nitrate and nickel(II) chloride are combined: