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To check each option, we must calculate the oxidation state of the underlined atom using the rule that oxygen is usually −2 and hydrogen is usually +1 (except in metal hydrides where it is −1), and the sum of oxidation states equals the overall charge (zero for neutral molecules).
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Checking option A: for P4O6,
4x+6(−2)=0⇒x=+3
for Cl2O7,
2x+7(−2)=0⇒x=+7
Since +3 is not greater than +7, the claimed order P > Cl is wrong, so option A is incorrect.
- Checking option B: for P4O10,
4x+10(−2)=0⇒x=+5
for SO3,
x+3(−2)=0⇒x=+6
Since +5 is not greater than +6, this order is also wrong.
- Checking option C: for N2O5,
2x+5(−2)=0⇒x=+5
for Al2O3,
2x+3(−2)=0⇒x=+3
for H2S (here S is more electronegative than H, so H is +1),
2(+1)+x=0⇒x=−2
Therefore the order is
+5>+3>−2
which is indeed strictly decreasing — this option is correct.
- Checking option D: for PbO2, Pb =+4; for N2O3, N =+3; for SO3, S =+6. Since +6>+4, the claimed order is wrong.
Hence, only option C gives a genuinely decreasing sequence of oxidation states, so the correct answer is Option C.