| Literature DB >> 30062002 |
Xing Feng1, Chunxuan Qi2, Hai-Tao Feng1, Zheng Zhao1, Herman H Y Sung1, Ian D Williams1, Ryan T K Kwok1, Jacky W Y Lam1, Anjun Qin2, Ben Zhong Tang1,2,3.
Abstract
This article presents a new strategy to achieve white-light emission from single tetraphenylethylene-substituted pyrenes (TPE-Pys) with aggregation-induced emission (AIE) characteristics. TPE-Pys were synthesized by a Pd-catalyzed coupling reaction of a boronic acid or pinacol ester of pyrene and tetraphenylethylene (TPE) derivatives and showed multicolor emission by introducing different substituents on the phenyl rings of TPE. TPE-Pys with a TPE unit at the 1-position and asymmetric TPE units at 2,7-positions show dual fluorescence in THF/water mixtures to realize white-light emission with CIE coordinates of (x = 0.30 and y = 0.41) and (x = 0.21 and y = 0.16), respectively. The structure-property relationship of TPE-Pys were investigated to elucidate the origin of the white emission. The results showed that due to the weak electronic interaction of pyrene and its chromophoric units at the 2,7-positions and the constraint of the rotation of the TPE unit at the 1-position of pyrene, each component can exhibit its own emission color. The combination of appropriate colors gives rise to white-light emission. Such a principle of molecular design may open a new avenue for preparing advanced multicolor and multifunctional optical materials for organic electronics.Entities:
Year: 2018 PMID: 30062002 PMCID: PMC6050622 DOI: 10.1039/c8sc01709c
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Molecular design of a pyrene-based white-emissive material.
Scheme 2Synthetic route to TPE-Pys.
Fig. 1TGA curves of TPE-Pys recorded under nitrogen at a heating rate of 10 °C min–1.
Physical properties of TPE-Pys
| Cpd |
|
|
|
|
|
|
| 293, 343 | 462/498/474 | 0.8/46.7 | 153 | 421 |
|
| 293, 304, 394 | 500/536/566 | 0.6/3.8 | 160 | 420 |
|
| 284, 342, 392 | 435/436, 538/533 | 0.6/6.8 | 198 | 422 |
|
| 279, 342 | 441/493/502 | 0.5/19.8 | 142 | 388 |
|
| 278, 341, 400 | 386, 407, 429/386, 407, 429, 538/530 | 0.8/9.7 | 162 | 355 |
Abbreviations: λabs = absorption maximum measured in THF at room temperature, λem = emission maximum in THF (sol), THF/water mixtures (1 : 99, v/v; aggre) and the solid state (film), ΦF = fluorescence quantum yield, Tm = melting point determined by DSC and Td = degradation temperature determined by TGA.
Summary of crystal data of 2a and 4
| Parameter |
|
|
| Empirical formula | C154H136Cl4O12 | C50H46N2 |
| Formula weight [g mol–1] | 2320.43 | 674.89 |
| Crystal system | Triclinic | Triclinic |
| Space group |
|
|
|
| 13.850(3) | 10.1039(4) |
|
| 15.150(3) | 14.5087(9) |
|
| 17.460(3) | 15.0844(8) |
|
| 73.28(3) | 65.241(5) |
|
| 78.26(3) | 89.939(4) |
|
| 77.43(3) | 69.932(5) |
| Volume [Å3] | 3385.5(12) | 1859.55(19) |
|
| 1 | 2 |
| Density, calcd [g m–3] | 1.138 | 1.205 |
| Temperature [K] | 153(2) | 99.97(10) |
| Unique reflns | 20 341 | 10 336 |
| Obsd reflns | 12 996 | 6588 |
| Parameters | 743 | 469 |
|
| 0.0976 | 0.0172 |
|
| 0.0755 | 0.1066 |
| w | 0.2271 | 0.1143 |
| GOF on | 1.004 | 1.004 |
Conventional R on Fhkl: ∑||Fo| – |Fc||/σ|Fo|.
Weighted R on |F|2: ∑[w(Fo2 – Fc2)2]/∑[w(Fo2)2]1/2.
Fig. 2ORTEP drawings of 2a and 4 with displacement ellipsoids drawn at the 50% probability level. Solvent molecules are omitted for clarity.
Fig. 3Packing arrangements in a single crystal of 2a: (a) face-to-face patterns of pyrene moieties separated by TPE and (b) multiple weak C–H···π interactions between adjacent molecules with distances ranging from 3.08 Å to 3.29 Å.
Fig. 4Representation of packing arrangements in a single crystal of 4: (a) face-to-face patterns of pyrene moieties separated by TPE units and (b) head-to-tail packing mode with multiple C–H···π interactions with a distance of 2.83 Å.
Fig. 5UV-vis spectra of 2–4 and pyrene in THF solutions (10 μM).
Fig. 6(A) PL spectra of 2a in THF/water mixtures with different water fractions (fw). Excitation wavelength: 365 nm. (B) Plot of relative PL intensity (I/I0) versus the composition of a THF/water mixture of 2a, where I0 is the PL intensity in pure THF solution. Inset: fluorescent photographs of 2a in THF/water mixtures (fw = 0, 60% and 99%) taken under UV illumination. (C) PL spectra of 2c in THF/water mixtures with different water fractions (fw). (D) Plot of I/I0versus the composition of a THF/water mixture of 2c, where I0 is the PL intensity in pure THF solution at 435 nm or 538 nm. Inset: CIE coordinates of the emission of 2c in THF/water mixtures with different fw (0–99 vol%).
Fig. 7Cyclic voltammograms of 2, 3 and 4.
Electrochemical properties of TPE-Pys
| Cpd |
|
| LUMO (eV) | HOMO (eV) |
|
|
| 402 | 0.99 | –1.41(–2.34) | –4.87(–5.42) | 3.46(3.08) |
|
| 455 | 0.48 | –1.28(–2.18) | –4.38(–4.91) | 3.10(2.72) |
|
| 448 | 0.48 | –1.39(–2.14) | –4.44(–4.91) | 3.05(2.77) |
|
| 399 | 0.99 | –1.41(–2.31) | –4.90(–5.42) | 3.48(3.11) |
|
| 451 | 0.48 | –1.69(–2.16) | –4.63(–4.91) | 2.94(2.75) |
λ onset = cut-off wavelength determined from the UV spectrum in CH3CN.
Measured by CV in 0.1 M n-Bu4NPF6/CH3CN at a scan rate of 100 mV s–1.
Calculated by DFT/B3LYP/6-31G* using Gaussian 03 with values given in the brackets determined by CV using the ferrocene HOMO level.
Calculated from the empirical formula HOMO = –(4.8 + Eonsetox – Eonsetox (Fc)) with values calculated from the UV spectrum given in the brackets.
Fig. 8Molecular orbital plots of 2–4 calculated by the B3LYP/6-31G level.