Photoinduced and Classical Sol-Gel Synthesis: Spectral and Photophysical Behavior of Silica Matrix Doped by Novel Fluorescent Dye Based on Boron Difluoride Complex
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Synthesis of Sol-Gel Hybrid Matrials
2.2.1. Preparation of Classical Sol-Gel Process
2.2.2. Synthesis of Photosol-Gel and Organic–inorganic Photopolymerization
2.3. Characterization
2.4. Irradiation Source
2.5. Formatting of Mathematical Components
3. Results
3.1. Photophysical Proprieties of Sol-Gel and Photosol-Gel DBDMA Doping
3.1.1. Absorption and Emission in Liquid and Photoinduced Sol-Gel Media
3.1.2. Absorption and Emission in Liquid Media and Classical Sol-Gel
3.1.3. Comparison of Absorption and Emission Spectra of the DBDMA in Different Solid Media
3.1.4. The Emission of DBDMA in Different Solid Media in the Presence of Gold NPs
4. Conclusions
- i.
- During this study, classical sol-gel glasses with the inclusion of DBDMA dye were synthesized in both the presence and absence of Au-NPs (see Supplementary Materials). The hybrid materials were characterized by FTIR and SEM. The photosol-gel was also prepared as a matrix of DBDMA dye. The production of gold NPs occurred during the photosol-gel process at 255 nm. It was proved by UV-Vis characterization that the Au+3 was reduced by DBDMA to Au0 under irradiation at 255 nm and 250 mW/cm2.
- ii.
- The reason for choosing the photosol-gel matrix was because of its high rigidity and transparency. On the other hand, the preparation of photosol-gel does not require the addition of water or solvents and is carried out in a single step.
- iii.
- The optical properties such as ε (molar absorptivity), f (oscillator strength), μ12 (transition dipole moment), and φf (fluorescence quantum yield) respectively for the target molecule were obtained in sol-gel, photosol-gel matrices and were compared to liquid media. It was noticed that the photosol-gel is the best matrix for the DBDMA dye. High fluorescence quantum yield of around 0.5 was obtained compared to the sol-gel matrix and the liquid media. The molar absorptivity was around 77,817.15 M−1 cm−1.
- iv.
- The addition of gold NPs to the DBDMA molecule in different matrices enhances the fluorescence intensities. The best system obtained is DBDMA doping in (MMA-TEOS) matrix in the presence of gold nanoparticles. The high intensity obtained in the presence of MMA with the photosol-gel formulation may be due to the decrease in polarity, which leads to a decrease in the relative amount of silanol groups in the inner pore surface.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Liquid Media | Photosol-Gel | Classical Sol-Gel | |
---|---|---|---|
λabs (nm) | 512 | 465 | 445 |
λem (nm) | 530 | 562 | 557 |
ε M −1 cm−1 | 42,945.22 | 77,817.15 | 44,006.4 |
Φf | 0.34 | 0.5 | 0.4 |
f | 0.15 | 0.67 | 0.3 |
μ12Debye | 4.07 | 8.83 | 5.8 |
Stock shift (nm) | 18 | 97 | 112 |
σa cm2/molec | 1.7 × 10−16 | 2.99 × 10−16 | 1.69 × 10−16 |
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Al-Harby, J.; Tar, H.; Al-Hazmy, S.M. Photoinduced and Classical Sol-Gel Synthesis: Spectral and Photophysical Behavior of Silica Matrix Doped by Novel Fluorescent Dye Based on Boron Difluoride Complex. Polymers 2021, 13, 2743. https://doi.org/10.3390/polym13162743
Al-Harby J, Tar H, Al-Hazmy SM. Photoinduced and Classical Sol-Gel Synthesis: Spectral and Photophysical Behavior of Silica Matrix Doped by Novel Fluorescent Dye Based on Boron Difluoride Complex. Polymers. 2021; 13(16):2743. https://doi.org/10.3390/polym13162743
Chicago/Turabian StyleAl-Harby, Jameelah, Haja Tar, and Sadeq M. Al-Hazmy. 2021. "Photoinduced and Classical Sol-Gel Synthesis: Spectral and Photophysical Behavior of Silica Matrix Doped by Novel Fluorescent Dye Based on Boron Difluoride Complex" Polymers 13, no. 16: 2743. https://doi.org/10.3390/polym13162743
APA StyleAl-Harby, J., Tar, H., & Al-Hazmy, S. M. (2021). Photoinduced and Classical Sol-Gel Synthesis: Spectral and Photophysical Behavior of Silica Matrix Doped by Novel Fluorescent Dye Based on Boron Difluoride Complex. Polymers, 13(16), 2743. https://doi.org/10.3390/polym13162743