| Literature DB >> 30210760 |
Xiu-Shuang Xing1,2, Rong-Jian Sa1, Pei-Xin Li1, Ning-Ning Zhang1,2, Zhong-Yuan Zhou1, Bin-Wen Liu1, Jie Liu1, Ming-Sheng Wang1, Guo-Cong Guo1.
Abstract
Nonlinear optical (NLO) switchable materials are important for photonic and optoelectronic technologies. One important issue for NLO photoswitching, the most studied physical switching approach, is how to improve the switching contrast of second harmonic generation (SHG) in crystals, because the known values are generally below 3 times. Thermoswitching, as another approach, has shown impressive high SHG-switching contrasts (4-∞ times), but the fast decay of thermally induced states demands constant heat sources to maintain specific SHG intensities. We have synthesized a photochromic and thermochromic bistable acentric compound, β-[(MQ)ZnCl3] (MQ+ = N-methyl-4,4'-bipyridinium), which represents the first crystalline compound with both photo- and heat-induced SHG-switching behavior and the first example of a thermoswitchable NLO crystal that can maintain its expected second-order NLO intensity without any heat source. The SHG-switching contrast can reach about 8 times after laser irradiation or 2 times after thermal annealing. The former value is the highest recorded for photoswitchable NLO crystals. This work also indicates that higher SHG-switching contrasts may be obtained through increasing electron-transfer efficiency, variation of permanent dipole moment, and self-absorption.Entities:
Year: 2017 PMID: 30210760 PMCID: PMC6118235 DOI: 10.1039/c7sc01228d
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1The structures of MQ+ and CEbpy.
Fig. 1Asymmetric structural unit of 1. Centroid (pyridyl, N12)-to-C26 and C16-to-centroid (pyridyl, N22) separations: d1 = 3.630(5) Å; d2 = 3.574(5) Å. H atoms are omitted for clarity.
Fig. 2Photochromic and thermochromic phenomena and ESR data of 1 (1A, as-synthesized; 1P, irradiated; 1T, thermally annealed).
Fig. 3(Left) Irradiated time-dependent UV-vis absorption spectra of 1 measured at room temperature in air using a 300 W Xe lamp (denoted as Xe). Inset: UV-vis spectrum after decoloration. (Right) UV-vis absorption spectra measured at room temperature in air for 1 with different thermal annealing times at 60 °C in air. Inset: UV-vis spectrum after decoloration. Noise is labelled with the * symbol.
Fig. 4The time-dependent SHG intensity of 1 (particle size: 150–200 μm) upon irradiation at room temperature in air by the 300 W Xe lamp (fundamental laser beam: (a) 1064 nm, 4 mJ; (b) 1800 nm, 3.5 mJ) or the 355 nm DPSS laser ((c); fundamental laser beam: 1064 nm, 4 mJ). SHG switching in four-cycle photochromic processes using the Xe lamp (d). The SHG intensities are the average of one hundred single pulse signals.
Fig. 5(a) SHG intensity measured at room temperature in air for 1 (particle size: 150–200 μm; fundamental laser beam: 1064 nm, 4 mJ) with different thermal annealing times at 60 °C in air. (b) SHG-switching in four-cycle thermochromic processes. The SHG intensities are the average of one hundred single pulse signals.
Calculated permanent dipole moment values of structural units in 1 before and after ET. Dipole moment vectors for different components at the closed-shell singlet and open-shell triplet states are labelled in Fig. S11 in the ESI
|
| Permanent dipole moment/Debye | ||||
| Asymmetric unit | Zn3-moiety | π-Stacking dimer | Cell with only Zn3-moieties | ||
| Before ET | B3LYP | 39.75 | 40.52 | 1.65 | 96.35 |
| M06 | 39.91 | 41.63 | 1.64 | 99.50 | |
| After ET | B3LYP | 19.67 | 16.03 | 1.16 | 82.08 |
| M06 | 19.70 | 15.78 | 1.15 | 84.32 | |
| Difference | B3LYP | 20.08 | 24.49 | 0.49 | 14.27 |
| M06 | 20.21 | 25.85 | 0.49 | 15.22 | |
A cell with only Zn3 moieties was obtained by removing the Zn1 and Zn2 moieties from the cell of 1.
Static first hyperpolarizability β(0) tensor components in atomic units (au) for the Zn3-moiety under vacuum, calculated at the B3LYP level with the 6-31 + G(d,p) basis set for C, H, N, and Cl and the SDD basis set in conjunction with the SDD pseudopotential for Zn. Orientation of the molecule is shown in Fig. S12 in the ESI
| Tensor components | Computed values (au) | |
| Before | After | |
|
| 87 715.4 | –7341.62 |
|
| 11 653.8 | –282.92 |
|
| 22 153.3 | 399.19 |
|
| 8986.97 | –524.72 |
|
| –5956.78 | 399.57 |
|
| –1430.75 | 66.66 |
|
| –1649.61 | 29.06 |
|
| 2034.63 | –509.99 |
|
| –626.91 | –773.48 |
|
| 2662.88 | 1604.29 |
| Total beta tensor | 113 786.41 | 7884.88 |