| Literature DB >> 32842594 |
Monica Daescu1, N'ghaya Toulbe1,2, Mihaela Baibarac1, Alin Mogos3, Adam Lőrinczi1, C Logofatu4.
Abstract
In this work, a complementary ultraviolet-visible (UV-VIS) spectroscopy and photoluminescence (PL) study on melatonin (Entities:
Keywords: melatonin; photodegradation; photoluminescence
Mesh:
Substances:
Year: 2020 PMID: 32842594 PMCID: PMC7503336 DOI: 10.3390/molecules25173820
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Ultraviolet-visible (UV-VIS) spectra of the samples labelled melatonin MEL-1 (a), MEL-2 (b), and MEL-3 (c) under exposure to ultraviolet (UV) light for up to 300 min. The UV-VIS spectra of the three samples before being exposed to UV light are shown in the inserts.
Figure 2UV-VIS spectra of (a) MEL 0.7 mM obtained by the dispersion of a commercial tablet in water and (b) the sample obtained by the interaction of 2 mL of MEL 0.7 mM with 1 mL of NaOH 3 mM. Both samples were exposed to UV light for up to 300 min. The UV-VIS spectra of the two samples before being exposed to UV light are shown in the inserts.
Figure 3The photoluminescence excitation (PLE) spectra of the melatonin (MEL) solution (a) and the mixtures of the MEL solution with the NaOH solutions with concentrations equal to 0.06 (b), 0.12 (c), 0.3 (d), and 1.5 M (e) are recorded when the emission wavelength is 420 nm. The MEL solution was prepared using powder purchased from Aldrich-Sigma. The red curves indicate the PLE spectra of the samples before ultraviolet (UV) irradiation. The magenta curves show the PLE spectra of the samples after 131 min of exposure to UV light. The black curves correspond to the PLE spectra collected after 97 s of exposure to UV light. The total number of PLE spectra recorded in the case of each sample is 81.
Figure 4The PLE spectra of the MEL solution (a) and mixtures of MEL with 0.2 mL of NaOH 0.3 M (b), 0.5 mL of NaOH 0.3 M (c), 1 mL of NaOH 0.3 M (d), and 1 mL of NaOH 1.5 M (e) were recorded using the emission wavelength of 420 nm. The MEL solution was prepared using commercial tablets purchased from a local pharmacy. The red curves indicate the PLE spectra of the samples in the initial state. The magenta curves correspond to the PLE spectra of the samples after UV irradiation for 131 min. The black curves correspond to the PLE spectra collected after 97 s of exposure to UV light. The total number of PLE spectra recorded in the case of each sample is 81.
Figure 5The photoluminescence (PL) spectra of the MEL solution (a) and mixtures of MEL with NaOH solutions with concentrations equal to 0.06 (b), 0.12 (c), 0.5 (d), and 1.5 M (e) were recorded at the excitation wavelength of 275 nm. The MEL solution was prepared using powder purchased from Aldrich-Sigma. The red curves indicate the PL spectra of the samples before exposure to ultraviolet (UV) light. The magenta curves correspond to the PL spectra of the samples after 131 min of UV irradiation. The black curves highlight the PL spectra collected after 130 s of exposure to UV light. The total number of PL spectra in the case of each sample is 60.
Figure 6The PL spectra of the MEL solution (a) and mixtures of MEL with the NaOH solutions with concentrations equal to 0.06 (b), 0.12 (c), 0.5 (d), and 1.5 M (e) were recorded at the excitation wavelength of 275 nm. The MEL solution was prepared using commercial tablets purchased from a local pharmacy. The red curves indicate the PL spectra of the samples before exposure to UV light. The magenta curves highlight the PL spectra of the samples after 131 min of exposure to UV light. The black curves highlight the PL spectra recorded after 130 s of UV irradiation. The total number of PL spectra recorded in the case of each sample is 60.
The intensities of the PLE and PL spectra of the commercial MEL tablets in the initial state and after the interaction with NaOH, depending on the exposure time to UV light (CMEL, CNaOH, VMEL, VNaOH, tUV, IPLE, and IPL, corresponding to the MEL concentration, NaOH concentration, MEL volume, NaOH volume, time of the exposure to UV light, the intensity of the PLE spectrum, and the intensity of the PL spectrum).
| CMEL (mM) | VMEL (mL) | CNaOH (M) | VNaOH (mL) | tUV (min.) | IPLE (counts/s) | IPL (counts/s) |
|---|---|---|---|---|---|---|
| 1.29 | 3 | 0 | 0 | 0 | 4.55 × 107 | 1.89 × 106 |
| 1.29 | 3 | 0 | 0 | 131 | 3.01 × 107 | 7.49 × 105 |
| 1.29 | 2.8 | 0.3 | 0.2 | 0 | 2.8 × 107 | 1.54 × 106 |
| 1.29 | 2.8 | 0.3 | 0.2 | 131 | 3.2 × 107 | 3.95 × 105 |
| 1.29 | 2.5 | 0.3 | 0.5 | 0 | 2.14 × 107 | 6.28 × 105 |
| 1.29 | 2.5 | 0.3 | 0.5 | 131 | 4.3 × 107 | 3.06 × 105 |
| 1.29 | 2 | 0.3 | 1 | 0 | 1.24 × 107 | 4.23 × 105 |
| 1.29 | 2 | 0.3 | 1 | 131 | 2.25 × 107 | 2.29 × 105 |
| 1.29 | 2 | 1.5 | 1 | 0 | 8.17 × 106 | 3.25 × 105 |
| 1.29 | 2 | 1.5 | 1 | 131 | 2.65 × 107 | 2.19 × 105 |
Scheme 1Photochemical reaction of melatonin (MEL) in the presence of NaOH.
Figure 7Raman spectra of MEL (a) before and (b) after interaction with NaOH.
Figure 8IR spectra of MEL (a) before and (b) after interaction with NaOH.
Figure 9(a) The x-ray photoelectron spectroscopy (XPS) C1s and (b) N1s spectra of MEL.
Figure 10(a) The X-ray photoelectron spectroscopy (XPS) C1s, (b) N1s, and (c) Na1S spectra of melatonin (MEL) interacting with NaOH.
Figure 11X-ray diffraction (XRD) patterns of MEL before (black curve) and after (green curve) 131 min of UV irradiation and MEL interacting with NaOH in the solid state, which was followed by exposure to UV light for 131 min (blue curve).