A solution contains one or more of the following ions: Ag*, Ca, and Co. Lithium bromide is added to the solution precipitate forms. An excess of lithium sulfate is then added to the solution and a precipitate forms. The precipitate is and lithium phosphate is added to the remaining solution, producing a precipitate. Which ions are present in the original solution? O Ag* O Ca+ Write a net ionic equation for the formation of the precipitate observed after the addition of lithium sulfate. Include physical states.

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Chapter1: Chemical Foundations
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A solution contains one or more of the following ions: Ag*, Ca, and Co. Lithium bromide is added to the solution and no
precipitate forms. An excess of lithium sulfate is then added to the solution and a precipitate forms. The precipitate is filtered off
and lithium phosphate is added to the remaining solution, producing a precipitate.
Which ions are present in the original solution?
O Ag+
O Ca?+
Co2+
Write a net ionic equation for the formation of the precipitate observed after the addition of lithium sulfate. Include
physical states.
net ionic equation:
Write a net ionic equation for the formation of the precipitate observed after the addition of lithium phosphate. Include
physical states.
net ionic equation:
Transcribed Image Text:A solution contains one or more of the following ions: Ag*, Ca, and Co. Lithium bromide is added to the solution and no precipitate forms. An excess of lithium sulfate is then added to the solution and a precipitate forms. The precipitate is filtered off and lithium phosphate is added to the remaining solution, producing a precipitate. Which ions are present in the original solution? O Ag+ O Ca?+ Co2+ Write a net ionic equation for the formation of the precipitate observed after the addition of lithium sulfate. Include physical states. net ionic equation: Write a net ionic equation for the formation of the precipitate observed after the addition of lithium phosphate. Include physical states. net ionic equation:
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