Q.Which of the following hydracids cannot be stored in a glass bottle?
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Group 17 elements (F, Cl, Br, I) have the outer configuration ns2np5, one electron short of a stable noble-gas octet, which makes them the most electronegative elements in their respective periods and gives them the most negative electron gain enthalpies of any group, since adding one electron completes a stable octet and releases a large amount of energy. Although fluorine's electron gain enthalpy is numerically less negative than chlorine's — because the very small fluorine atom packs high inter-electronic repulsion into its compact 2p subshell, making it slightly harder to add one more electron — fluorine remains the strongest oxidising agent of the group, since overall oxidising power depends on the full thermodynamic cycle of bond dissociation, electron gain and hydration enthalpy together, and fluorine's very low X-X bond dissociation enthalpy together with the exceptionally large hydration enthalpy of the small F− ion outweigh its modest electron gain enthalpy. Down the group, the bond dissociation enthalpy of X2 generally decreases (fluorine itself is anomalously weakly bonded because of strong lone-pair-lone-pair repulsion between its very small atoms), and the acid strength of the hydrogen halides increases from HF to HI as the H-X bond weakens with increasing atomic size; a similar trend runs the other way for the Group 15 hydride bases, whose base strength decreases from NH3 to BiH3. Halogens are coloured because their molecules absorb visible light, promoting electrons to higher energy levels, with the absorbed wavelength shifting to longer wavelength (lower energy gap) down the group, from pale yellow F2 to deep violet I2. Fluorine shows markedly anomalous behaviour compared with the rest of the group — for instance it reacts vigo …
Glass is largely silicon dioxide, and one of these hydracids is uniquely able to react with and dissolve that silica. …
HF etches glass because it reacts with the SiO2 that glass is made of.
Glass is largely silicon dioxide (SiO2). Hydrofluoric acid attacks and dissolves silica:
SiO2+4HF→SiF4+2H2O
…
- CBSE 2026Set A1 markMCQQ.Which of the following exhibits only one oxidation state other than zero ?(a) Cl2(b) F2(c) I2(d) Br2
›Reveal solutionSolution
Fluorine is the most electronegative element and lacks d-orbitals, so it shows only -1; the other halogens also show positive states (+1, +3, +5, +7).
Being the most electronegative element, fluorine can never be oxidised by any other element, so it exhibits only the -1 oxidation state (apart from 0 in F2). It also has no d-orbitals in its valence shell, so it cannot expand its octet to reach positive states. In contrast, Cl, Br and I have va …
- CBSE 2024Set D1 markMCQQ.Which of the following halogens does not exhibit a positive oxidation state?(a) I(b) Br(c) Cl(d) F
›Reveal solutionSolution
Fluorine is the most electronegative element and lacks vacant d-orbitals, so it cannot expand its octet or lose electrons to a more electronegative partner; it never shows a positive oxidation state.
The other halogens (Cl, Br, I) are less electronegative and have accessible d-orbitals, so they can form bonds to more electronegative atoms (like O and F) and exhibit positive oxidation states (+1, +3, +5, +7), e.g. in oxoacids and interhalogens.
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- CBSE 2024Set ANNUAL1 markMCQQ.Which of the following has ability to release bromine from KBr?(a) I2(b) SO2(c) Br2(d) F2
›Reveal solutionSolution
A halogen can displace a halide ion lower in the group because oxidising power decreases down Group 17 (F2 > Cl2 > Br2 > I2).
The reaction is a halogen-displacement (single displacement redox) reaction:
2KBr+F2→2KF+Br2
Only a halogen with greater oxidising power than Br2 can oxidise Br− to Br2. Fluorine, being the strongest oxidising agent among the halogens (highest electrode reduction potential, smallest atomic size, highest electronegativity), readily oxidises Br− ions.
…
- CBSE 2023Set ANNUAL1 markMCQQ.Which of the following hydracids cannot be stored in a glass bottle?(a) HF(b) HCl(c) HBr(d) HI
›Reveal solutionSolution
HF etches glass because it reacts with the SiO2 that glass is made of.
Glass is largely silicon dioxide (SiO2). Hydrofluoric acid attacks and dissolves silica:
SiO2+4HF→SiF4+2H2O
…
- CBSE 2022Set ANNUAL1 markMCQQ.An aqueous solution of KBr is treated with which of the following to liberate bromine gas?(a) Cl2(b) HI(c) SO2(d) I2
›Reveal solutionSolution
Chlorine is a stronger oxidising agent than bromine, so it displaces bromine from bromide ion in solution.
Reasoning: Down Group 17, oxidising power (and standard reduction potential) decreases: F2 > Cl2 > Br2 > I2. A halogen higher in the group can oxidise (displace) the halide ion of a halogen lower in the group.
Since Cl2 is a stronger oxidising agent than Br2, passing Cl2 gas into an aqueous KBr solution oxidises Br^- to Br2 while Cl2 itself is reduced to Cl^-:
Cl2+2KBr⟶2KCl+Br2 …
- CBSE 2021Set A1 markMCQQ.Which of the following bonds is the strongest?(a) F - F(b) Cl - Cl(c) I - I(d) Br - Br
›Reveal solutionSolution
The Cl–Cl bond is the strongest of the halogen X–X bonds; F–F is unusually weak because of interelectronic repulsion between the small fluorine atoms.
Bond strength (bond dissociation enthalpy) among halogen molecules does not simply decrease down the group. Approximate values (kJ/mol):
- F–F ≈ 155 (anomalously low)
- Cl–Cl ≈ 242 (highest)
- Br–Br ≈ 193
- I–I ≈ 151 …
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