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Q.In the following reaction 4P + 3KOH + 3H2O -> 3KH2PO2 + PH3, which statement is correct?

(a) 'P' is oxidised only
(b) 'P' is reduced only
(c) 'P' is oxidised as well as reduced
(d) 'P' is neither oxidised nor reduced
Jharkhand JacJAC Intermediate Board (1st Year) 2026MCQ· 1mImportance★★★★★
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When the same element, starting from a single oxidation state, ends up in both a higher and a lower oxidation state among the products, that is a disproportionation reaction.

Reaction: 4P + 3KOH + 3H2O -> 3KH2PO2 + PH3

Oxidation state of P in elemental phosphorus (P4, written here as P): 0 (element in its standard state).

Oxidation state of P in KH2PO2 (potassium hypophosphite): Using K = +1, H = +1 (bonded to O, standard H), O = -2:

(+1) + 2(+1 for the two H bonded to O) ... more directly: for the hypophosphite ion H2PO2-, charge = -1. With 2 H at +1 and 2 O at -2: 2(+1) + x + 2(-2) = -1 => 2 + x - 4 = -1 => x = +1.

So P is +1 in KH2PO2 -- this is an INCREASE from 0, i.e. P is OXIDISED here.

Oxidation state of P in PH3: H bonded to P (a less electronegative element than H here, since P and H have similar/P slightly higher electronegativity by the modified scale used for this compound) is taken as -1 in this hydride convention: x + 3(-1) = 0 => x = +3?

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