| Literature DB >> 21358588 |
Ming-Ming Huo1, Wei-Long Liu, Zhi-Ren Zheng, Wei Zhang, Ai-Hua Li, Da-Peng Xu.
Abstract
The Raman spectra of all-trans-lycopene in n-hexane were measured under high pressure, and the results compared with those of β-carotene. The different pressure effects on Raman spectra are analyzed taking into account the different structures of lycopene and β-carotene molecules. It is concluded that: (a) the vibronic coupling between the S₁ and S₀ states of β-carotene is stronger than that of lycopene, (b) the diabatic frequency increment of the ν₁ mode is more susceptible to pressure than that of the ν₂ mode for lycopene, and (c) β-rings rotation can relieve the pressure effect on the C=C bond length in β-carotene. This work provides some insights for elucidating the structural and environmental effects on Raman spectra of carotenoids.Entities:
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Year: 2011 PMID: 21358588 PMCID: PMC6259832 DOI: 10.3390/molecules16031973
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Raman spectra of lycopene (A) and β-carotene (B) in the solid state (a), CS2 (analytical grade) (b) and n-hexane (c) under ambient conditions. Asterisks in panel B(c) denote the Raman bands from n-hexane.
Figure 2Raman spectra of lycopene in n-hexane under different pressures.
Figure 3Effect of pressure on Raman frequencies of (A) lycopene and (B) β-carotene in n-hexane. The changes in the Raman frequencies relative to ambient pressure are shown for the ν1 (▲) and ν2 (•) bands. The slopes (S) obtained from liner fitting are also presentedwith frequency in cm−1 and pressure in GPa.