Ma Yingxin, Xu Chao-Fei, Mao Xin-Rui, Wu Yang, Yang Jing, Xu Li-Ping, Zhuo Ming-Peng, Lin Hongtao, Zhuo Shuping, Wang Xue-Dong
School of Chemistry and Chemical Engineering, Shandong University of Technology, Zibo, Shandong 255000, P. R. China.
Institute of Functional Nano & Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials & Devices, Soochow University, Suzhou, Jiangsu 215123, P. R. China.
J Am Chem Soc. 2023 Apr 26;145(16):9285-9291. doi: 10.1021/jacs.3c02061. Epub 2023 Apr 11.
Organic hierarchical branch micro/nanostructures constituted by single crystals with inherent multichannel characteristics exhibit superior potential in regulating photon transmission for photonic circuits. However, organic branch micro/nanostructures with precise branch positions are extremely difficult to achieve due to the randomness of the nucleation process. Herein, by taking advantage of the dislocation stress field-impurity interaction that solute molecules deposit preferentially along the dislocation line, twinning deformation was introduced into microcrystals to induce oriented nucleation sites, and ultimately organic branch microstructures with controllable branch sites were fabricated. The growth mechanism of these controllable single crystals with an angle of 140° between trunk and branch is attributed to the low lattice mismatching ratio (η) of 4.8%. These as-prepared hierarchical branch single crystals with asymmetrical optical waveguide characteristics have been demonstrated as an optical logic gate with multiple input/out channels, which provides a route to command the nucleation sites and offers potential applications in the organic optoelectronics at the micro/nanoscale.
由具有固有多通道特性的单晶构成的有机分级分支微/纳米结构在调节光子电路的光子传输方面具有卓越潜力。然而,由于成核过程的随机性,具有精确分支位置的有机分支微/纳米结构极难实现。在此,利用溶质分子优先沿位错线沉积的位错应力场 - 杂质相互作用,将孪晶变形引入微晶以诱导定向成核位点,最终制备出具有可控分支位点的有机分支微结构。这些主干与分支夹角为140°的可控单晶的生长机制归因于4.8%的低晶格失配率(η)。这些制备出的具有不对称光波导特性的分级分支单晶已被证明是一种具有多个输入/输出通道的光学逻辑门,这为控制成核位点提供了一条途径,并在微/纳米尺度的有机光电子学中具有潜在应用。