Q.Which of the following has the smallest bond angle?
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Group 16 elements (O, S, Se, Te, Po) share the outer configuration ns2np4, two electrons short of a stable octet, and their common oxidation states are −2, +2, +4 and +6, with the higher states becoming more stable for the heavier members as metallic character increases and electronegativity falls down the group (justifying the placement of O, S, Se, Te and Po together despite their differing hydride and oxide chemistry). First ionisation enthalpy in Group 16 is lower than in the corresponding Group 15 element of the same period because the extra electron in np4 must pair up in an already singly-occupied orbital, and this electron-pairing repulsion makes it easier to remove than an electron from the extra-stable, exactly half-filled np3 configuration of Group 15. Down the group, acidity of the hydrides H2E increases (H2O<H2S<H2Se<H2Te) as the H-E bond weakens with increasing atomic size, while thermal stability of these same hydrides decreases in the same order, since a longer, wea …
Down group 16, the H-E-H bond angle in these hydrides shrinks as the central atom grows larger and less electronegative, so the trend points to a specific member as having the smallest angle. …
Going down group 16 the central atom grows larger and less electronegative; the bonding pairs move farther out and bond-pair repulsion weakens, so the H-E-H angle shrinks toward 90deg. H2Te has the smallest angle.
Bond angles: H2O 104.5deg, H2S ~92deg, H2Se ~91deg, H2Te ~90deg.
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- CBSE 2026Set A1 markMCQQ.Which of the following has the highest bond energy ?(a) O - O(b) S - S(c) Se - Se(d) Te - Te
›Reveal solutionSolution
Among group-16 element-element single bonds, S-S is the strongest; O-O is anomalously weak.
One might expect bond energy to fall steadily down a group, but for group-16 the O-O single bond is anomalously weak. The oxygen atom is very small, so the lone pairs on the two bonded oxygen atoms repel strongly, weakening the O-O bond (about 142 kJ/mol). Sulphur is larger, so this repulsion is reduced and the S-S bond is stronger (about 226 kJ/mol). Further down, the increasing atomic …
- CBSE 2026Set SEM31 markMCQQ.Which one of the following has lowest electron affinity?(a) Te(b) Se(c) S(d) O
›Reveal solutionSolution
Among O, S, Se, Te the electron affinity of oxygen is anomalously the lowest because the incoming electron enters a small, crowded 2p orbital and faces high inter-electronic repulsion. Correct option (d).
Going down group 16 the electron gain enthalpy would normally become less negative, but oxygen is an exception: its 2p orbital is so small and compact that adding an extra electron causes large electron-electron repulsion, releasing less energy than expected. As a result sulphur (not oxygen) has the most negative electron affinity, and oxygen ends up with the lowest (l …
- CBSE 2024Set D1 markMCQQ.Which of the following has highest bond energy?(a) O-O(b) S-S(c) Se-Se(d) Te-Te
›Reveal solutionSolution
Down group 16 the single-bond energy is highest for S-S, not O-O, because the small O atoms have strong lone-pair/lone-pair repulsion that weakens the O-O bond. Order: S-S > Se-Se > O-O > Te-Te.
Single-bond dissociation energies (approx., kJ/mol): O-O ~142, S-S ~226, Se-Se ~172, Te-Te ~126.
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- CBSE 2024Set D1 markMCQQ.Which of the following has the smallest bond angle?(a) H2O(b) H2S(c) H2Se(d) H2Te
›Reveal solutionSolution
Going down group 16 the central atom grows larger and less electronegative; the bonding pairs move farther out and bond-pair repulsion weakens, so the H-E-H angle shrinks toward 90deg. H2Te has the smallest angle.
Bond angles: H2O 104.5deg, H2S ~92deg, H2Se ~91deg, H2Te ~90deg.
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- CBSE 2023Set F1 markMCQQ.In which of the following oxidation state of oxygen is +2?(a) F2O(b) Cl2O(c) Na2O2(d) Na2O
›Reveal solutionSolution
Oxygen shows +2 only in OF2 (F2O), because fluorine is more electronegative — option (A).
Oxygen is normally the more electronegative atom and shows negative oxidation states (usually -2, and -1 in peroxides). The ONE common exception is when it is bonded to fluorine, the only element more electronegative than oxygen.
- F2O (OF2): F is more electronegative, so each F is -1; for a neutral molecule, O must be +2. …
- CBSE 2022Set E1 markMCQQ.Which of the following is the least volatile ?(a) H2Se(b) H2Te(c) H2S(d) H2O
›Reveal solutionSolution
H2O has extensive hydrogen bonding, giving it the highest boiling point and thus the least volatility of the group.
Volatility decreases as intermolecular forces increase (higher boiling point = less volatile).
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- CBSE 2021Set A1 markMCQQ.The elements of group 16 are known as(a) Halogens(b) Chalcogens(c) Transition elements(d) Noble gases
›Reveal solutionSolution
Group 16 (O, S, Se, Te, Po) are the chalcogens.
The elements of Group 16 — oxygen, sulphur, selenium, tellurium and polonium — are collectively called chalcogens, meaning 'ore-forming', because many metal ores are oxides or sulphides.
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- CBSE 2016Set ANNUAL1 markMCQQ.Which of the following gases has odour but no colour?(a) NO2(b) SO2(c) N2(d) Cl2
›Reveal solutionSolution
Checking colour and odour for each gas, only SO₂ is colourless yet distinctly odorous.
Colour and odour of the given gases:
- (a) NO2: reddish-brown coloured gas — not colourless.
- (b) SO2: colourless gas with a characteristic sharp, pungent, suffocating smell — matches "has odour but no colour." …
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