Which of the following molecules have unequal bonds?
1.
2.
3.
4.
Find the decreasing order of stability of O₂, O₂⁻, O₂⁺ , and O₂²⁻.
1. O₂⁺ > O₂ > O₂⁻ > O₂²⁻Compound in which central atom assumes sp3d hybridisation is
1. SO3
2. PCl5
3. SO2
4. PCl3
Mg2C3 reacts with water forming propyne . The number of sigma and pie bonds in \(C_{3}^{4-}\)is-
1. Two sigma and two pi bonds.
2. Three sigma and one pi bonds.
3. Two sigma and one pi bonds.
4. Two sigma and three pi bonds.
What is the correct order of C−O bond lengths among \(\mathrm{CO},\mathrm{CO}_3^{2-},\) and \(\mathrm{CO_2}\) ?
1. \(\mathrm{CO}_2<\mathrm{CO}_3^{2-}<\mathrm{CO} \)
2. \(\mathrm{CO}<\mathrm{CO}_3^{2-}<\mathrm{CO}_2 \)
3. \(\mathrm{CO}_3^{2-}<\mathrm{CO}_2<\mathrm{CO} \)
4. \(\mathrm{CO}<\mathrm{CO}_2<\mathrm{CO}_3^{2-}\)
The correct order of electronegativity of hybrid orbitals of carbon is:
1. sp > sp2 < sp3
2. sp > sp2 > sp3
3. sp < sp2 > sp3
4. sp < sp2 < sp3
Amongst the one with the highest boiling point is:
1. H2O because of H-bonding.
2. H2Te because of higher molecular weight.
3. H2S because of H-bonding.
4. H2Se because of lower molecular weight.
Find the correct increasing order of dipole moments among the following molecules:
CF₄, NH₃, NF₃ and H₂O
1. CF₄ < NH₃ < NF₃ < H₂OA diatomic molecule AB has a dipole moment of 0.816 debye. If its bond length is 100 pm. then what percentage of an electronic charge will exist on each atom?
1. 83%
2. 37%
3. 10%
4. 17%
A pair in which both species are not likely to exist is:
| 1. | \(H^+_2,He^{2-}_2\) | 2. | \(H^-_2,He^{2+}_2\) |
| 3. | \(H^{2+}_2,He_2\) | 4. | \(H^+_2,He^{2+}_2\) |