Answer:
2 Cr(s) + 3 I2(s) → 2 CrI3(s)
Explanation:
Reactants:
Solid Chromium
• Chromium is a transition metal with an elemental symbol → Cr
• It can exist as a stable monatomic solid → Cr(s)
Solid Iodine
• Iodine is a non-metal halide of Group 7A → I
• It exists as a diatomic solid → I2(s)
Products:
Chromium(III) iodide
• Chromium, Cr → roman numeral III → +3 charge → Cr3+
• Iodide, I → from group 7A → -1 charge → I-
• When ions combine, their charges or oxidation numbers crisscross to become subscripts
• Cr will have a subscript of 1 from I- → Cr
• I will have a subscript of 3 from Cr3+ → I3
• Subscript 1 is no longer indicated → CrI3(s)
Unbalanced Chemical Reaction: Cr(s) + I2(s) → CrI3(s)
Balancing the chemical reaction:
1. Balance I:
Cr(s) + I2(s) → CrI3(s)
• There are 2 I in the reactant and 3 I in the product side
• Balance I by adding the coefficient 3 in I2 and 2 in CrI2
• There would be a total of 6 I in the reactant and product sides
Cr(s) + 3 I2(s) → 2 CrI3(s)
2. Balance Cr:
Cr(s) + 3 I2(s) → 2 CrI3(s)
• There is 1 Cr in the reactant and 2 Cr in the product side
• Balance Cr by adding the coefficient 2 in Cr(s)
• There would be a total of 2 Cr in the reactant and product sides
2 Cr(s) + 3 I2(s) → 2 CrI3(s)
