University of Angers, LPhiA, SFR MATRIX, 2 Bd. Lavoisier, 49045, Angers Cedex 01, France.
University of Angers, MOLTECH-Anjou-UMR CNRS 6200, SFR MATRIX, 49000, Angers, France.
Sci Rep. 2023 Jun 19;13(1):9943. doi: 10.1038/s41598-023-37147-4.
We demonstrate a series of organic-inorganic nanocomposite materials combining the mesoporous silica (PS) and benzil (BZL) nanocrystals embedded into its nanochannels (6.0-13.0 nm in diameter) by capillary crystallization. One aims to design novel, efficient nonlinear optical composite materials in which inactive amorphous host PS-matrix provides a tubular scaffold structure, whereas nonlinear optical functionality results from specific properties of the deposited guest BZL-nanocrystals. A considerable contraction of the BZL melt during its crystallization inside the silica nanochannels results in a formation of the texture consisting of (221)- and (003)-oriented BZL nanoclusters (22 nm in length), separated by voids. Specificity of the textural morphology similarly to the spatial confinement significantly influences the nonlinear optical features of composite PS:BZL materials being explored in the second harmonic generation (SHG) experiment. The light polarization anisotropy of the SHG response appears to be considerably reduced at channel diameters larger than 7 nm apparently due to the multiple scattering and depolarization of the light on randomly distributed and crystallographically oriented BZL-nanoclusters. The normalized SHG response decreases nonlinearly by more than one order of magnitude as the channel diameter decreases from 13.0 to 6.0 nm and vanishes when spatial cylindrical confinement approaches the sizes of a few molecular layers suggesting that the embedded BZL clusters indeed are not uniformly crystalline but are characterized by more complex morphology consisting of a disordered SHG-inactive amorphous shell, covering the channel wall, and SHG-active crystalline core. Understanding and controlling of the textural morphology in inorganic-organic nanocrystalline composites as well as its relationships with nonlinear optical properties can lead to the development of novel efficient nonlinear optical materials for the light energy conversion with prospective optoelectronic and photonic applications.
我们展示了一系列将介孔硅(PS)和二苯甲酮(BZL)纳米晶嵌入其纳米通道(直径 6.0-13.0nm)的有机-无机纳米复合材料,通过毛细结晶法制备。目的是设计新型高效的非线性光学复合材料,其中非活性无定形主体 PS 基质提供管状支架结构,而非线性光学功能来自于沉积的客体 BZL 纳米晶的特定性质。BZL 熔体在其结晶过程中在二氧化硅纳米通道内的收缩相当大,导致形成由(221)和(003)取向的 BZL 纳米簇(长 22nm)组成的纹理,由空隙隔开。与空间限制一样,纹理形态的特异性也会显著影响复合 PS:BZL 材料的非线性光学特性,这在二次谐波产生(SHG)实验中得到了探索。SHG 响应的光偏振各向异性在通道直径大于 7nm 时明显降低,显然是由于光在随机分布和结晶取向的 BZL 纳米簇上的多次散射和去极化。随着通道直径从 13.0nm 减小到 6.0nm,归一化 SHG 响应非线性减小一个数量级以上,当空间圆柱限制接近几个分子层的尺寸时,SHG 响应消失,这表明嵌入的 BZL 簇实际上不是均匀结晶的,而是具有更复杂的形态,由覆盖通道壁的无序的 SHG 非活性无定形壳和 SHG 活性结晶核组成。对无机-有机纳米晶复合材料的结构形态的理解和控制及其与非线性光学性质的关系,可以为新型高效非线性光学材料的开发提供指导,这些材料可用于光能转换,具有广阔的光电和光子应用前景。