Development of an Innovative and Eco-Friendly UV Radiation Absorber, Based on Furan Moieties
Abstract
:1. Introduction
2. Materials and Methods
2.1. Chemistry
2.2. Preliminary Screening
2.3. Molecular Design
2.3.1. Synthesis of 2-ethylhexyl 2-cyanoacetate
2.3.2. Synthesis of (E,Z)-2-Ethylhexyl 2-Cyano-3-(furan-2-yl)acrylate
2.4. Evaluation of Properties
2.4.1. UV Spectrum and Critical Lambda (λMAX)
- 1-
- Butyl methoxydibenzoylmethane 10−5 M solution
- 2-
- Diethylamino hydroxybenzoyl hexyl benzoate 10−5 M solution.
2.4.2. Solubility
2.4.3. In Vivo Determination of the Sun Protection Factor (SPF)
2.4.4. In Vitro Determination of the UVA Protection Factor (UVA)
3. Results
3.1. Chemistry—Analysis of Characterization
- 1H-NMR: (CDCl3, 400 MHz): δ 8.01 (1H,s, H-4), 7.75 (1H, d, J = 1.7 Hz, H-1), 7.40 (1H, d, J = 3.7 Hz, H-3), 6.66 (1H, dd, J = 3.7, 1.7 Hz, H-2), 4.23–4.20 (2H,m, H-5), 1.73–1.67 (1H, m, H-6), 1.48–1.29 (8H, m, H-7, H-8, H-9, H-11), 0.96–0.88 (6H,m, H-10, H-12).
- 13C NMR (CDCl3, 100 MHz): δ 162.73 (COO), 148.79 (C-γ), 148.14 (C-β), 139.35 (C-1), 121.51 (C-2), 115.16 (CN), 113.80 (C-3), 98.81 (C-α), 68.90 (C-5), 38.77 (C-6), 30.29 (C-7), 28.89 (C-8), 23.74 (C-9), 22.90 (C-11), 13.98 (C-10), 10.97 (C-12)
- GC-MS: 10.35 min
3.2. Chemistry—Determination of Melting Point
3.3. Evaluation of Sun Protection Properties
3.3.1. UV Spectrum and Critical Lambda (λMAX)
3.3.2. Solubility
- 1-
- Di-Ethyl-Hexyl Adipate
- 2-
- Octocrylene
- 3-
- Octyl Methoxy Cinnamate
- 4-
- Ethyl Hexyl Salicylate
- 5-
- Ethanol.
3.3.3. In Vivo Determination of the Sun Protection Factor (SPF)
3.3.4. In Vitro Determination of UVA Protection Factor (UVA)
4. Discussion
4.1. Chemistry
4.2. Evaluation Properties
4.2.1. UV Spectrum and Critical Lambda (λMAX)
4.2.2. Solubility
4.2.3. In Vivo Determination of the Sun Protection Factor (SPF)
4.2.4. In Vitro Determination of UVA Protection Factor (UVA)
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Compound | Raw Formula | Molar Mass (g/mol) | Melting Point (°C) | Density (g/cm3) |
---|---|---|---|---|
Octocrylene | C24H27NO2 | 361.48 | 14.0 | 1.05 |
Bis-Ethylhexyloxyphenol Methoxyphenyl Triazine | C38H49N3O5 | 627.81 | 83.0 | 1.10 |
Butyl Methoxydibenzoylmethane | C20H22O3 | 310.39 | 83.5 | 1.08 |
Diethylamino Hydroxybenzoyl Hexyl Benzonate | C24H31NO4 | 397.51 | 54.0 | 1.16 |
Ethyl Hexyl Methoxycinnamate | C18H26O3 | 290.40 | −25.0 | 1.01 |
Phase | INCI Name | % w/w |
---|---|---|
A | PEG-30 DIPOLYHYXROXYSTEARATE | 3.00–6.00 |
POLYGLYCERYL-4 DIISOSTEARATE/POLYHYDROXYSTEARATE/SEBACATE | 3.00–6.00 | |
DIBUTYL ADIPATE | 8.00–12.00 | |
BUTYLENE GLYCOL DICAPRYLATE/DICAPRATE | 7.00–10.00 | |
BUTYLOCTYL SALICYLATE | 1.00–3.00 | |
ISONYL ISONONANOATE | 1.00–3.00 | |
DIETHYLHEXYL CARBONATE | 10.00–15.00 | |
A1 | TITANIUM DIOXIDE, SILICA | 6.00 |
A2 | ZINC OXIDE, TRIETHOXYCAPRYLYLSILANE | 4.10 |
B | AQUA | q.s. |
GLYCERIN | 1.00–3.00 | |
ALLANTOIN | 0.02–0.05 | |
MAGNESIUM SULFATE | 0.50–0.10 | |
DISODIUM EDTA | 0.10–0.30 | |
C | PARFUM | 0.20–0.50 |
PRESERVATIVES | q.s. | |
100.00 |
Phase | INCI Name | % w/w |
---|---|---|
A | PEG-30 DIPOLYHYXROXYSTEARATE | 3.00–6.00 |
POLYGLYCERYL-4 DIISOSTEARATE/POLYHYDROXYSTEARATE/SEBACATE | 3.00–6.00 | |
DIBUTYL ADIPATE | 8.00–12.00 | |
BUTYLENE GLYCOL DICAPRYLATE/DICAPRATE | 7.00–10.00 | |
BUTYLOCTYL SALICYLATE | 1.00–3.00 | |
(E,Z)-2-ETHYLHEXYL-2-CYANO-3-(FURAN-2-YL)ACRYLATE | 5.00 | |
ISONYL ISONONANOATE | 1.00–3.00 | |
DIETHYLHEXYL CARBONATE | 10.00–15.00 | |
A1 | TITANIUM DIOXIDE, SILICA | 6.00 |
A2 | ZINC OXIDE, TRIETHOXYCAPRYLYLSILANE | 4.10 |
B | AQUA | q.s. |
GLYCERIN | 1.00–3.00 | |
ALLANTOIN | 0.02–0.05 | |
MAGNESIUM SULFATE | 0.50–0.10 | |
DISODIUM EDTA | 0.10–0.30 | |
C | PARFUM | 0.20–0.50 |
PRESERVATIVES | q.s. | |
100.00 |
Instrument | Model of the Instrument |
---|---|
SpectroAnalyser | Labsphere UV2000S |
Applied amount of product per area | 1.3 mg/cm2 |
Plate manufacturer/Lot number | Helioscreen HD6 Lot 335 |
Solar simulator for UV exposure | ATLAS SUNTEST CPS+ |
Raw UVA irradiance | 1.78 |
Irradiance correction factor | 3.72 |
UVA calibrated irradiance (mW/cm2) | 6.6216 mW/cm2 |
Phase | INCI | % w/w |
---|---|---|
A | WATER | q.s. |
PROPYLENE GLYCOL | 1.00–2.00 | |
XANTHAN GUM | 0.20–0.40 | |
CARBOMER | 0.10–0.30 | |
DISODIUM EDTA | 0.05–0.10 | |
B | OCTOCRYLENE | 3.00 |
BUTYL METHOXYDIBENZOYLMETHANE | 5.00 | |
ETHYLHEXYL METHOXYCINNAMATE | 3.00 | |
BIS-ETHYLHEXYLOXYPHENOL-METHOXYPHENYL TRIAZINE | 2.00 | |
CETYL ALCOHOL | 0.50–1.5 | |
STEARETH-21 | 2.00–3.00 | |
STEARETH-2 | 3.00–5.00 | |
DICAPRYLYL CARBONATE | 5.00–7.00 | |
DECYL COCOATE | 5.00–7.00 | |
PHENOXYETHANOL | 0.30–0.60 | |
METHYLPARABEN | 0.10–0.20 | |
ETHYLPARABEN | 0.10–0.20 | |
C | CYCLOPENTASILOXANE | 1.00–2.00 |
D | TRIETHANOLAMINE | 0.10–0.30 |
100.00 |
Phase | INCI | % w/w |
---|---|---|
A | WATER | q.s. |
PROPYLENE GLYCOL | 1.00–2.00 | |
XANTHAN GUM | 0.20–0.40 | |
CARBOMER | 0.10–0.30 | |
DISODIUM EDTA | 0.05–0.10 | |
B | OCTOCRYLENE | 3.00 |
(E,Z)-2-ETHYLHEXYL-2-CYANO-3-(FURAN-2-YL)ACRYLATE | 5.00 | |
ETHYLHEXYL METHOXYCINNAMATE | 3.00 | |
BIS-ETHYLHEXYLOXYPHENOL-METHOXYPHENYL TRIAZINE | 2.00 | |
CETYL ALCOHOL | 0.50–1.5 | |
STEARETH-21 | 2.00–3.00 | |
STEARETH-2 | 3.00–5.00 | |
DICAPRYLYL CARBONATE | 5.00–7.00 | |
DECYL COCOATE | 5.00–7.00 | |
PHENOXYETHANOL | 0.30–0.60 | |
METHYLPARABEN | 0.10–0.20 | |
ETHYLPARABEN | 0.10–0.20 | |
C | CYCLOPENTASILOXANE | 1.00–2.00 |
D | TRIETHANOLAMINE | 0.10–0.30 |
100.00 |
Parameters | Average SPF | Standard Deviation |
---|---|---|
Standard Formulation | 15.66 | 1.20 |
Standard Formulation + 5% (E,Z)-2-ethylhexyl 2-cyano-3-(furan-2-yl)acrylate | 17.30 | 2.70 |
Formulation | UVAPF0 | Dv. Std UVAPF0 | ISO in Vitro UVAPF | Dv. Std (ISO in Vitro UVAPF) |
---|---|---|---|---|
Standard Sunscreen Formulation | 14.98 | 0.41 | 12.9 | 0.64 |
Standard Sunscreen Formulation + (E,Z)-2-ethylhexyl 2-cyano-3-(furan-2-yl)acrylate | 10.20 | 0.26 | 8.40 | 0.78 |
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Giacomo, B.; Luca, B.; Nicola, L.; Luigi, R. Development of an Innovative and Eco-Friendly UV Radiation Absorber, Based on Furan Moieties. Cosmetics 2020, 7, 6. https://doi.org/10.3390/cosmetics7010006
Giacomo B, Luca B, Nicola L, Luigi R. Development of an Innovative and Eco-Friendly UV Radiation Absorber, Based on Furan Moieties. Cosmetics. 2020; 7(1):6. https://doi.org/10.3390/cosmetics7010006
Chicago/Turabian StyleGiacomo, Busalacchi, Beverina Luca, Lionetti Nicola, and Rigano Luigi. 2020. "Development of an Innovative and Eco-Friendly UV Radiation Absorber, Based on Furan Moieties" Cosmetics 7, no. 1: 6. https://doi.org/10.3390/cosmetics7010006
APA StyleGiacomo, B., Luca, B., Nicola, L., & Luigi, R. (2020). Development of an Innovative and Eco-Friendly UV Radiation Absorber, Based on Furan Moieties. Cosmetics, 7(1), 6. https://doi.org/10.3390/cosmetics7010006