Predict the product(s) along with the states, indicate the type of reaction, and balance the following chemical reactions. a. A solution of lead (II) nitrate is mixed with a solution of sodium iodide. b. Solid zinc sulfide reacts with oxygen in the air. c. Liquid butane (C4H10 (l)) is used as a fuel to ignite a lighter. d.
Nitric acid and silver metal reaction. Silver reacts with nitric acid to give silver nitrate (AgNO 3), NO 2 and H 2 O. Silver is oxidized to +1 oxidation state. HNO 3 reaction with water. HNO 3 acid dissociate completely in the water and release hydronium ion (H 3 O +) in the water to form strong acid aqueous solution. Nitric acid and hydrogen ...
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Aqueous solutions of rubidium hydroxide and cobalt(II) chloride are mixed. Aqueous solutions of strontium bromide and aluminum nitrate are mixed. Solid lead(II) acetate is added to an aqueous solution of ammonium iodide. Given: reactants. Asked for: reaction and net ionic equation. Strategy:
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(vi) When silver nitrate solution is added to NaCl solution, then a white precipitate of silver chloride is formed. This is a double displacement reaction as two compounds react to form two new compounds. Question 12. (a) A substance X, an oxide of a metal, is used extensively in the cement industry. This element is found in our bones also.
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Making lead(II) chloride. Lead(II) chloride can be made as a white precipitate by adding a solution containing chloride ions to lead(II) nitrate solution. You could use things like sodium chloride solution to provide the chloride ions, but it is usually easier just to add some dilute hydrochloric acid.
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(a) Nickel metal is added to a solution of copper (II) nitrate We have elemental Ni and Cu2 + (aq); on the activity series, Ni is above Cu. Therefore, Ni will be oxidized to the + 2 ion (look on the activity series) by Cu2 + (aq), and the Cu2 + will be reduced to elemental Cu: Ni (s) + Cu2 + (aq) - - > Ni2 + (aq) + Cu (s) This is a prime example of a single displacement reaction!