STATEMENT - 1 : All `Pb^(+2)` form white ppt with dil. HCl in estimation.
STATEMENT - 2 : `Al^(+3)` form white ppt with `NH_(4)OH//NH_(4)Cl`.
STATEMENT - 3 : `Fe(OH)_(3)` is soluble in excess `NaOH`.

An inorganic compound (A) is white solid and exist as dimer. (A) get sublimes on 180^(0)C (A) gives fumes (B) with wet air (A) gives white ppt with NH_(4)OH .However (A) is soluble in excess of NaOH to give soluble compound(C) The soluble compound (C)

An inorganic compound (A) is white solid and exist as dimer. (A) get sublimes on 180^(0)C (A) gives fumes (B) with wet air (A) gives white ppt with NH_(4)OH .However (A) is soluble in excess of NaOH to give soluble compound(C) The inorganic compound 'A' is

An inorganic compound (A) is white solid and exist as dimer. (A) get sublimes on 180^(0)C (A) gives fumes (B) with wet air (A) gives white ppt with NH_(4)OH .However (A) is soluble in excess of NaOH to give soluble compound(c) 'B' would be

STATEMENT-1: [Co(NH_(3))_(3)Cl_(3)] does not give white ppt . with AgNO_(3) solution . and STATEMENT-2: Chlorine is not present in the ionisable part of the given complex .

$ White ppt. of AgCl is soluble in NH_(4)OH ! It is due to the formation of soluble complex.

Assertion : Cu(OH))_(2) is soluble in NH_(4)OH but not in NaOH . Reason : Cu(OH)_(2) forms a soluble complex with NH_(3) .