Sulphide ion `(S^(2-))` reacts with solid sulphur forming `S_(2)^(2-)` and `S_(3)^(2-)` with formation constants 12 and 132 respectively. Formation constant of `S_(3)^(2-)` from sulphur and `S_(2)^(2-)` is `:`

The oxidation number of sulphur in S_(2)F_(2) and S_(8) is

Oxidation number of sulphur in S_(2)SO_(3)^(2-) is

Sulphide ions in alkaline solution react with solid sulphur to form polyvalent sulphide ions. The equilibrium constant for the formation of S_(2)^(2-) and S_(3)^(2-) from S and S^(2-) ions is 1.7 and 5.3 respectively. Calculate equilibrium constant for the formation of S_(3)^(2-) from S_(2)^(2-) and S .

The two sulphur atoms in Na_(2)S_(2)O_(3) have

" Oxidation state of terminal Sulphur in S_(2)O_(3)^(-2) is "

The equivalent weight of sulphur in S_2Cl_2 is

Oxidation number of sulphur in S_(8), S_(2)F_(2) and H_(2)S are

Sulphide ion in alkaline solution reacts with solid sulphur to form polysulphide ions having formulae S_2^(2-),S_3^(2-),S_4^(2-) and so on. The equilibrium constant for the formation of S_3^(2-) is 132 (K_2) , both from S and S^(2-) What is the equilibrium constant for the formation of S_3^(2-) from S_2^(2-) and S ?