| Literature DB >> 35541149 |
Leyu Wang1, Tao Yu1, Zongliang Xie1, Eethamukkala Ubba1, Tianya Zhan1, Zhiyong Yang1, Yi Zhang1, Zhenguo Chi1.
Abstract
A couple of gated photochromic molecules TrPEP and TrPEPO with AIEgen have been rationally designed and synthesized. No photochromism is detected for TrPEP whilst TrPEPO shows obvious photochromic properties in the solution state. By adding equimolar H2O2 aqueous solution to the TrPEP solution, the photochromic properties would be quickly turned on. The oxidation reagent acts as a gate to switch the photochromic properties by switching the triphenylphosphine group to a triphenylphosphine oxide group. Both TrPE and TrPEO display typical AIE phenomena. Different intensive emission bands with the emission maxima of 500 nm and 455 nm are detected before (TrPEP) and after (TrPEPO) oxidization in solid states. Combining the AIEgens, photochromic ON/OFF states can be easily indicated by the different emission colors in the solid state. Single crystal analyses and TD-DFT calculations were carried out to further investigate the photophysical and photochromic properties of these compounds. These new triphenylethylene derivatives provide a new strategy to achieve gated photochromic materials with simple chemical structures and gate indicators. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35541149 PMCID: PMC9080581 DOI: 10.1039/c8ra02828a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1Chemical structures of compounds TrPEP and TrPEPO.
Fig. 2(a) Emission spectra of TrPEP in THF/water mixed solvent systems containing different water fractions (from 10% to 90%), the inset shows the photographs of the TrPEP in THF/water mixed solutions (1.0 × 10−4 mol L−1) containing 0% and 90% water fraction upon 365 nm UV irradiation; (b) dynamic light scattering result and the SEM image of TrPEP in THF/water solvent mixture containing 90% of water fraction; (c) emission spectra of TrPEPO in ethanol/water mixed solvent systems containing different water fractions (from 10% to 90%), the inset shows the photographs of the TrPEPO in ethanol/water mixed solutions (1.0 × 10−4 mol L−1) containing 0% and 90% water fraction upon 365 nm UV irradiation; (d) dynamic light scattering result and the SEM image of TrPEPO in ethanol/water solvent mixture containing 90% of water fraction.
Fig. 3(a) Illustration for the gated-photochromic processes by oxidation the TrPEP to TrPEPO; (b) illustration for the motoring the photochromic ON/OFF state by spotting the solutions on a TLC plate; (c) emission spectra of TrPEP and TrPEPO in solid states, the inset shows the photographs of the TrPEP and TrPEPO in solid states upon 365 nm UV irradiation; (d) time-dependent UV-vis absorption spectra of TrPEPO in degassed THF solution (1.0 × 10−3 M) upon UV-irradiation (365 nm); (e) time-dependent UV-vis absorption spectra of irradiated TrPEPO in degassed THF solution (1.0 × 10−3 M) upon white light irradiation; (f) recycling of the photochromic process of TrPEPO solution obtained through H2O2-gated reaction as a function of exposure to UV-light (365 nm) and white-light for 45 seconds and 25 minutes, respectively.
Fig. 4(a) Single crystal structure for compound TrPEP; (b) single crystal structure for compound TrPEPO; (c) molecular packing for TrPEPO molecules viewed down in b axis.
Calculated HOMO, LUMO distributions; energy levels; energy gap and vertical excitation wavelengths for compounds TrPEP and TrPEPO
| Sample | TrPEP | TrPEPO |
|---|---|---|
| LUMO |
|
|
| HOMO |
|
|
|
| −1.53 | −1.71 |
|
| −5.49 | −5.94 |
| Δ | 3.96 | 4.23 |
| Vertical excitationwavelength (nm) | 351 | 324 |