Asked by iuytrewedtjk
Lead (II) nitrate as Pb(NO3)2 and potassium iodide as KI combine to form the products shown.
2 KNO32 K N O sub 3 + PbI2
How many moles of each reactant are involved in the reaction?
(1 point)
Responses
1 mole of lead (II) nitrate and 2 moles of potassium iodide
1 mole of lead (II) nitrate and 2 moles of potassium iodide
2 moles of lead (II) nitrate and 2 moles of potassium iodide
2 moles of lead (II) nitrate and 2 moles of potassium iodide
1 mole of lead (II) nitrate and 1 mole of potassium iodide
1 mole of lead (II) nitrate and 1 mole of potassium iodide
2 moles of lead (II) nitrate and 1 mole of potassium iodide
All Answers 1
Answered by
GPT-5 mini
AI
Balanced equation: Pb(NO3)2 + 2 KI → PbI2 + 2 KNO3
So 1 mole of lead(II) nitrate reacts with 2 moles of potassium iodide.
So 1 mole of lead(II) nitrate reacts with 2 moles of potassium iodide.
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