Free Spectroscopy and Analysis MCQs with Answers
47 Spectroscopy and Analysis MCQs from Chemistry, each with the correct answer and a written explanation of why it is correct. Free and unlimited, with no account needed.
Spectroscopy studies how substances absorb, emit or interact with electromagnetic radiation. Coverage includes ultraviolet-visible absorption, infrared identification of functional groups, Beer-Lambert law, spectral interpretation and the use of spectroscopic data to identify or determine the concentration of chemical substances.
Last updated
47 questions · page 4 of 5
31. You are required to test the presence of NH4+ Ion in water. Which of the following reagent will solve your problem?
- A. Imethylglyoxime
- B. Tollen's reagent
- C. Nessler's reagent
- D. Magneson reagen
Explanation: Nessler's reagent can be used to detect the presence of NH4+ ions in water as brown ppt is formed. Therefore the correct answer will be C.
Correct answer: Nessler's reagent32. The differences in energy between different states of bond vibrations in a molecule correspond to which electromagnetic region?
- A. Microwave
- B. Infrared
- C. Visible
- D. X-rays
Explanation: The difference in energy between two vibrational states is equal to the energy associated with the wavelength of radiation that was absorbed, it lies in the infrared region, therefore the answer is B.
Correct answer: Infrared33. Select the incorrect Statement:
- A. Molecule may gain an electron to form a molecular anion.
- B. Molecule may lose an electron to form a molecular cation.
- C. Molecular cations are less abundant than molecular anions.
- D. These molecular ions can be formed by passing a high-energy electron beam through a gas.
Explanation: Abundance of cationic molecular ions is due to the ability to stabilize unpaired electrons which makes the formation of cationic molecular ions energetically less demanding. That's why cationic molecular ions are more abundant than anionic ones.
Correct answer: Molecular cations are less abundant than molecular anions.34. Choose the correct Statement:
- A. The most direct and accurate method for determining atomic masses uses mass spectrometry.
- B. An indirect but precise method for determining molecular masses is through mass spectrometry.
- C. Collision between electrons and atoms produces negative ions by the absorption of electrons by atoms or molecules.
- D. The first significant application of mass spectrometry was demonstrating the detection of isotopes of Argon.
Explanation: Electron Collision. Often, electron collisions with gas molecules result in electron attachment to the molecule, which forms a negative ion.
Correct answer: Collision between electrons and atoms produces negative ions by the absorption of electrons by atoms or molecules.35. Molar extinction coefficient (ε) a constant in Beer- Lambert law is the characteristics of the:
- A. Solute
- B. Solvent
- C. Concentration
- D. All of the above
Explanation: Under defined conditions of solvent, pH, and temperature the molar absorption coefficient for a particular compound is a constant at the specified wavelength. Furthermore, it is used to calculate concentration using A = εLcWhere A is the amount of light absorbed by the sample for a particular wavelength,ε is the molar extinction coefficient, L is the distance that the light travels through the solution, and c is the concentration of the absorbing species per unit volume. Hence, it is a characteristic of concentration, as well as solute, and solvent.
Correct answer: All of the above36. What is true about modern methods used in the determination of the structure of compounds?
- A. Accurate but more time consuming
- B. Accurate, rapid but chemicals are used in large amounts
- C. Accurate, rapid but sophisticated and complicated
- D. Accurate, simple and less time consuming
Explanation: The modern methods used by scientists to identify and differentiate between cell structures are efficient, accurate, simple, and less time-consuming in comparison to the methods used in the past. Examples are IR spectroscopy, mass spectroscopy, NMR, etc.
Correct answer: Accurate, simple and less time consuming37. Which region of electromagnetic spectrum is involved in nuclear magnetic resonance microwave(NMR spectroscopy)?
- A. Microwave
- B. Radio wave
- C. Infrared region
- D. X-rays
Explanation: NMR spectroscopy works by applying a radio frequency to the sample, specific to the nuclei of interest. The energy from the radio frequency pulse is enough to flip the nuclei from its Alpha position to the Beta.
Correct answer: Radio wave38. The electronic transition that is involved in the visible region is:
- A. σ - σ
- B. d - d
- C. π - π
- D. π - σ
Explanation: d-d transitions are electronic transitions that occur between the molecular orbitals that are mostly metallic in character; specifically between the d-orbitals of a transition metal complex. When electronic transitions occur between these orbitals, the color observed is complementary to the wavelengths absorbed in the visible region.
Correct answer: d - d39. 100% transmission in IR spectroscopy means:
- A. No absorption
- B. 50% absorption
- C. 75% absorption
- D. 100% absorption
Explanation: When IR radiation is passed through a sample, some of it is absorbed and some of it paasses through (transmitted). A 100% transmission means the sample does not absorb any IR radiation.
Correct answer: No absorption40. Chemical shift in NMR spectroscopy is expressed as delta (δ) or tan (t) scale. Choose the correct relationship between δ and t:
- A. δ = 10 - t
- B. δ = 10 + t
- C. t = δ - 10
- D. t = 10 - δ
Explanation: In NMR spectroscopy, δ (delta) represents the chemical shift, while t is another scale used to express the same concept. The correct relationship between these two scales is δ = 10 - t. This means that to convert from the t scale to the δ scale, you subtract the tan value from 10. The other options are incorrect because they either add instead of subtract, reverse the roles of δ and t, or suggest a subtraction that doesn't reflect the true relationship.
Correct answer: δ = 10 - t