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用于极化激子转换的有机异质结构的动态外延生长

Dynamic Epitaxial Growth of Organic Heterostructures for Polarized Exciton Conversion.

作者信息

Wu Bin, Fan Jian-Zhong, Han Jing-Yu, Su Yang, Zhuo Ming-Peng, Sun Ji-Hao, Gao Yang, Chen Song, Wu Jun-Jie, Wang Zuo-Shan, Wang Xue-Dong

机构信息

College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou, 215123, China.

Institute of Functional Nano & Soft Materials (FUNSOM), Soochow University, Suzhou, 215123, China.

出版信息

Adv Mater. 2023 Jan;35(2):e2206272. doi: 10.1002/adma.202206272. Epub 2022 Dec 4.

Abstract

Highly spatial and angular precision in epitaxial-growth process is crucial for constructing organic low-dimensional heterostructures (OLDHs) with the desired substructures, which remains significant challenge owing to the unpredicted location of complex heterogeneous nucleation. Herein, a dynamic epitaxial-growth approach is developed along the tailored longitudinal/horizontal directions to create diverse OLDHs with hierarchical architectures. The controlled morphology evolution of seed crystals from kinetic to thermodynamic species is achieved via incrementally increasing the crystallization time from 0 to 600 s. Accordingly, the kinetic and thermodynamic seed crystals respectively present the specific lattice-matching crystal-planes of (100) and (011), which facilitates the longitudinal epitaxial-growth (LG) process for triblock heterostructures, and the horizontal epitaxial-growth (HG) process for axial-branch heterostructures. The dominant core/shell heterostructures are prepared via both LG and HG processes with a crystallization time of ≈30 s. Significantly, these prepared OLDHs realize the rationally polarized exciton conversion for optical logic gate application through the exciton conversion and photon propagation at the heterojunction. This strategy provides an avenue for the precise synthesis of OLDHs with anisotropy optical characters for integrated optoelectronics.

摘要

在外延生长过程中实现高度的空间和角度精度对于构建具有所需子结构的有机低维异质结构(OLDHs)至关重要,然而由于复杂异质形核位置难以预测,这仍然是一项重大挑战。在此,我们开发了一种沿定制的纵向/水平方向的动态外延生长方法,以创建具有分层结构的多种OLDHs。通过将结晶时间从0逐步增加到600秒,实现了籽晶从动力学物种到热力学物种的可控形态演变。相应地,动力学和热力学籽晶分别呈现出特定的晶格匹配晶面(100)和(011),这有利于三嵌段异质结构的纵向外延生长(LG)过程以及轴向分支异质结构的横向外延生长(HG)过程。通过LG和HG过程,在结晶时间约为30秒时制备出了主要的核壳异质结构。值得注意的是,这些制备的OLDHs通过在异质结处的激子转换和光子传播,实现了用于光学逻辑门应用的合理极化激子转换。该策略为精确合成具有各向异性光学特性的OLDHs以用于集成光电子学提供了一条途径。

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