16 gram of CaC2 and 18 gram of H2O were mixed in the given reaction,

To find out how many moles of CaC2 and H2O are present, we can use the formula:

moles = mass/molecular weight

The molecular weight of CaC2 = 40.08 (Ca) + 2 x 12.01 (C) = 64.1 g/mol
The molecular weight of H2O = 2 x 1.01 (H) + 16 (O) = 18.02 g/mol

Now, we calculate the moles of CaC2 and H2O:
moles of CaC2 = 16 g / 64.1 g/mol = 0.25 mol
moles of H2O = 18 g / 18.02 g/mol = 1 mol

From the given reaction, we know that 1 mole of CaC2 reacts with 2 moles of H2O to form 1 mole of Ca(OH)2.

Now, let's check for the limiting reactant:
0.25 mol CaC2 (1 mol H2O / 1 mol CaC2) = 0.25 mol H2O is required.

Since there are 1 mol of H2O present (which is more than what is required), CaC2 is the limiting reactant.

Now, we can calculate the mass of Ca(OH)2 formed:
0.25 mol CaC2 (1 mol Ca(OH)2 / 1 mol CaC2) = 0.25 mol Ca(OH)2 is formed
The molecular weight of Ca(OH)2 = 40.08 (Ca) + 2(16 + 1.01) = 74.1 g/mol

Mass of Ca(OH)2 formed = 0.25 mol x 74.1 g/mol = A. 18.53 grams

Now, let's calculate the amount of excess reactant remaining:
1 mol H2O (initial) - 0.25 mol H2O (reacted) = 0.75 mol H2O (remaining)
Mass of H2O remaining = 0.75 mol x 18.02 g/mol = B. 13.52 grams