Rotational spectra, vibrational spectra, rotation–vibration spectra of diatomic and linear molecules, Raman spectra - experimental techniques and classical theory of Raman scattering - One Line Questions

1. Overtones in vibrational spectra arise from transitions where Δv is: ±2
2. The fundamental vibrational transition corresponds to which change in the vibrational quantum number? 0 → 1
3. What is the experimental setup for Raman spectroscopy typically characterized by? A laser source and a spectrograph/monochromator
4. What is the phenomenon observed in Raman spectroscopy? Scattering of radiation with a frequency shift
5. Which molecules can exhibit pure rotational Raman spectra? Only molecules with a changing polarizability during rotation
6. What physical property of a molecule is directly related to the rotational constant 'B'? Moment of inertia
7. Vibrational Raman spectra provide information about: Bond polarizability derivatives
8. What is the primary information obtained from rotational spectra? Molecular geometry and bond lengths
9. What are the P and R branches in a rotation–vibration spectrum? Branches corresponding to ΔJ = -1 and ΔJ = +1 respectively
10. For linear molecules, the selection rule for vibrational Raman activity is: Change in polarizability
11. The spacing between adjacent lines in a pure rotational spectrum of a rigid diatomic molecule is approximately: Constant
12. In a rigid rotor model, what is the energy of a rotational level given by? E_J = BJ(J+1)
13. In the harmonic oscillator model, what is the energy of a vibrational level given by? E_v = ħω(v + 1/2)
14. Rotation–vibration spectra combine information from which two types of molecular motion? Vibrational and rotational
15. A molecule that is IR active is not necessarily Raman active, and vice versa. This is due to differences in: Selection rules
16. What does the term 'anharmonicity' imply for vibrational spectra? Decreasing spacing between vibrational levels
17. What experimental technique is used to measure rotational spectra? Microwave Spectroscopy
18. Which of the following is a common source used in Raman spectroscopy? Argon ion laser
19. Which type of molecules can exhibit pure rotational spectra? All of the above
20. Rayleigh scattering refers to: Elastic scattering with no frequency change
21. Stokes lines in Raman spectra correspond to: Inelastically scattered photons with lower energy than incident photons
22. Anti-Stokes lines in Raman spectra correspond to: Inelastically scattered photons with higher energy than incident photons
23. For a linear molecule, a vibrational mode that causes a change in polarizability parallel to the molecular axis will be: IR inactive and Raman active
24. What is the main advantage of Raman spectroscopy over IR spectroscopy for certain applications? It can study homonuclear diatomic molecules
25. How does centrifugal distortion affect the rotational energy levels? It makes the energy levels less closely spaced
26. For a molecule to exhibit a pure rotational spectrum, what must be true about its dipole moment? It must be non-zero
27. What is the primary region of the electromagnetic spectrum for vibrational spectroscopy? Far-infrared
28. What is the experimental technique used for studying vibrational spectra? Infrared (IR) Spectroscopy
29. Which statement best describes the relationship between IR and Raman activity for vibrational modes in linear molecules? IR and Raman activity are often complementary, with some modes active in one but not the other.
30. Which type of molecules can exhibit vibrational Raman spectra? Only molecules with a changing polarizability
31. In rotation–vibration spectra of linear molecules, the P and R branches are generally observed when the vibrational mode is: Parallel to the molecular axis
32. The Q branch in rotation–vibration spectra is typically observed for vibrational modes that are: Perpendicular to the molecular axis in linear molecules
33. For a vibrational mode to be IR active, what must change during the vibration? Dipole moment
34. What is the classical theory of Raman scattering based on? Polarizability theory
35. In rotation–vibration spectra, what is observed for diatomic molecules? A series of lines (a band) with fine structure due to rotation
36. What is the effect of increasing temperature on the intensity of Raman spectra? Stokes line intensity decreases, Anti-Stokes line intensity increases.
37. Which of the following is NOT a type of Raman scattering? Rayleigh scattering
38. The intensity of Raman scattering is generally: Weaker than IR absorption
39. What is the Q branch in a rotation–vibration spectrum? The branch where ΔJ = 0
40. The frequency shift in Raman scattering is related to: The vibrational or rotational energy levels of the molecule
41. In the context of Raman scattering, what is polarizability? The ability of a molecule's electron cloud to be distorted by an electric field
42. The spacing between lines in the P and R branches of a rotation–vibration spectrum is approximately equal to: Twice the rotational constant B
43. What does the term 'centrifugal distortion' refer to in non-rigid rotor models? The tendency of bonds to lengthen at higher rotational speeds
44. What is the role of the spectrograph in Raman spectroscopy? To disperse the scattered light by frequency
45. What type of electromagnetic radiation is primarily used to study rotational spectra? Microwave radiation
46. What is the selection rule for rotational transitions in a rigid rotor? ΔJ = ±1
47. The selection rules for rotational Raman spectra involve changes in the rotational quantum number J by: ΔJ = ±2
48. What is the selection rule for vibrational transitions in the harmonic oscillator approximation? Δv = ±1
49. The frequency of a vibrational transition in a diatomic molecule is approximately given by: ω = sqrt(k/μ)