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Interpreting Ultraviolet Spectra- The Effect of Conjugation

The wavelength necessary to effect the π → π* transition in a conjugated molecule depends on the energy gap between HOMO and LUMO, which in turn depends on the nature of the conjugated system. Thus, by measuring the UV spectrum of an unknown, we can derive structural information about the nature of any conjugated π electron system present in a molecule.

One of the most important factors affecting the wavelength of UV absorption by a molecule is the extent of conjugation. Molecular orbital calculations show that the energy difference between HOMO and LUMO decreases as the extent of conjugation increases. Thus, 1,3-butadiene absorbs at λmax = 217 nm, 1,3,5-hexatriene absorbs at λmax = 258 nm, and 1,3,5,7-octatetraene absorbs at λmax = 290 nm. (Remember: longer wavelength means lower energy.)

Other kinds of conjugated systems, such as conjugated enones and aromatic rings, also have characteristic UV absorptions that are useful in structure determination. The UV absorption maxima of some representative conjugated molecules are given in Table 14.2.
Interpreting Ultraviolet Spectra- The Effect of Conjugation | Chemistry Optional Notes for UPSC

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Which of the following statements accurately describes the relationship between the extent of conjugation and the wavelength of UV absorption?
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The document Interpreting Ultraviolet Spectra- The Effect of Conjugation | Chemistry Optional Notes for UPSC is a part of the UPSC Course Chemistry Optional Notes for UPSC.
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FAQs on Interpreting Ultraviolet Spectra- The Effect of Conjugation - Chemistry Optional Notes for UPSC

1. What is ultraviolet spectroscopy?
Ans. Ultraviolet spectroscopy is a technique used to analyze the absorption of ultraviolet (UV) radiation by molecules. It provides information about the electronic structure and bonding of molecules.
2. What is the significance of conjugation in ultraviolet spectra?
Ans. Conjugation refers to the presence of alternating single and multiple bonds in a molecule, which creates a system of overlapping p-orbitals. This leads to the delocalization of electrons, resulting in a lower energy gap between the ground state and excited state, and hence, a shift in the absorption wavelength observed in the UV spectra.
3. How does conjugation affect the absorption of UV radiation?
Ans. Conjugation increases the extent of electron delocalization, leading to a larger π-electron system. This results in a bathochromic shift, where the absorption maximum shifts towards longer wavelengths, indicating lower energy transitions. Consequently, conjugated systems absorb radiation in the visible or UV region.
4. What are the characteristics of a molecule with strong conjugation in UV spectra?
Ans. Molecules with strong conjugation exhibit a higher degree of electron delocalization, leading to a more extended π-electron system. This results in a bathochromic shift, with increased absorption in the visible or UV region, and a higher molar absorptivity (ε) value.
5. How does the presence of conjugation affect the color of compounds?
Ans. The presence of conjugation in a compound leads to the absorption of visible light, causing the compound to appear colored. The specific color observed depends on the energy gap between the ground state and the excited state, which is influenced by the extent of conjugation. Compounds with more extended conjugation tend to appear more intensely colored.
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