Ask a New Question
Menu

equation

2CoI3 + 3 K2S= Co2S3 + 6KI
2 moles of Cobalt (III) iodide + 3 moles of Potassium sulfide = cobalt (III) sulfide + 6moles of Potassium Iodide

assuming all that can react will react, how many grams of cobalt (iii) sulfide will form when 1318.89 grams of cobalt (III) iodide are combined with 551.35 grams of potassuim sulfide..... <<<< I found the answer to be 321 grams of Co2S3>>> and was i suppose to use the given mass of the Potassium sulfide as well....?

1 answer

See my response to this problem above.
Similar Questions
    1. answers icon 3 answers
  2. 2 equation2CoI3 + 3 K2S= Co2S3 + 6KI 2 moles of Cobalt (III) iodide + 3 moles of Potassium sulfide = cobalt (III) sulfide +
    1. answers icon 1 answer
    1. answers icon 1 answer
  4. CoCl3(aq) + K2S(aq) yield Co2S3(s) + KCl(aq)How many moles of KCl would be produced when 0.470 moles of Co2S3 are produced in
    1. answers icon 1 answer
more similar questions