Answer:
Answers explained below
Explanation:
(a)Given,
Molecular formula of the complex = [Ni(NH3)x(H2O)y]Clz
(i) Ni is in +2 oxidation state in the complex.
(ii) NH3 and H2O are the neutral ligands but Cl is the negatively charged ligand.
(iii) complex is neutral
So, to make the nickel complex in +2 oxidation with neutral charge, we requires 2 Cl-.
Hence, form the above statements, we can say that here in the complex
z=2
(b) Molarity of HCl = 0.2005M
Volume of HCl used = 20.02mL = 20.02*10-3 L
Weight of the nickel(II) ammonia complex = 0.1550g
Reaction of HCl with Ammonia,
HCl (aq) + NH3 (aq) -> NH4Cl (aq)
HCl reacts with ammonia in 1:1 ratio to form ammonium salt (NH4Cl). That means 1 mol of HCl reacts with 1 mol of NH3.
So, we have to find number of moles of HCl used.
No. of moles of HCl used = Molarity of HCl * Volume of HCl used (L)
= 0.2005M * 20.02*10-3 L = 4.014*10-3 moles
Hence no. of moles of ammonia in the complex = No. of moles of HCl used = 4.014*10-3 mol
So, Experimental Equivalent Weight = Weight of the nickel(II) ammonia complex/ No. of moles of NH3
= 0.1550g / 4.014*10-3 mol
= 38.615 g/mol
Hence, Experimental Equivalent Weight = 38.615 g/mol
(c) Given,
x+y=< 6
Molar mass of [Ni(NH3)x(H2O)y]Clz = 58.69 + x(14.00+3*1) + y(16+2*1)+z(35.45)
= (58.69 + 17x + 18y + 35.45z) g/mol
Case1 x=6, y=0 and z=2
Molar mass of [Ni(NH3)6(H2O)0]Cl2 = (58.69 + 17*6 + 18*0 + 35.45*2) g/mol
= 58.69+102+70.90 = 231.59 g/mol
Experimental Equivalent Weight = 233.59/6 = 38.598 g/mol
So, This experimental equivalent weight is equal to the calculated experimental equivalent weight.
Hence the molecular formula of the complex is [Ni(NH3)6]Cl2 where x=6, y=0 and z=2.
Note: You can try other combination but in every case you will find lower or higher calculated experimental equivalent weight.
